Broadcast signal transmission apparatus using multiple transmit antennas and layered division multiplexing and method using same

The broadcast signal transmission device and method address power control and compatibility issues in LDM and MIMO systems by using scaling factors for polarization signals, ensuring efficient transmission and compatibility with single-antenna receivers.

WO2025198262A1PCT designated stage Publication Date: 2025-09-25ELECTRONICS & TELECOMM RES INST
View PDF 5 Cites 0 Cited by

Patent Information

Application Number
PCT/KR2025/003323
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2025-03-10
Filing Date
2025-03-14
Publication Date
2025-09-25

AI Technical Summary

Technical Problem

Existing broadcast signal transmission systems face challenges in efficiently managing power control and ensuring compatibility with single-antenna receivers when using layered division multiplexing (LDM) and MIMO technologies together, leading to potential collisions in signaling information between SISO and MIMO receivers.

Method used

A broadcast signal transmission device and method that employs an LDM combiner and transmission signal generation unit to generate polarization signals using scaling factors corresponding to injection levels, allowing for efficient power control and compatibility with existing single-antenna receivers by hierarchically multiplexing core and enhanced layer signals.

Benefits of technology

Enables efficient power control and compatibility with single-antenna receivers, preventing collisions in signaling information, and optimizing transmission rates for both SISO and MIMO receivers in broadcast signal transmission systems.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure KR2025003323_25092025_PF_FP_ABST
    Figure KR2025003323_25092025_PF_FP_ABST
Patent Text Reader

Abstract

A broadcast signal transmission apparatus according to an embodiment of the present invention includes: an LDM coupling unit for outputting a first polarization signal corresponding to a first polarization and a second polarization signal corresponding to a second polarization; and a transmission signal generation unit for generating a first polarization transmission signal corresponding to the first polarization signal using a scaling coefficient of the first polarization, and generating a second polarization transmission signal corresponding to the second polarization signal using a scaling coefficient of the second polarization.
Need to check novelty before this filing date? Find Prior Art

Description

Broadcast signal transmission device using multiple transmission antennas and hierarchical division multiplexing and method using the same

[0001] The present invention relates to a broadcast signal transmission / reception system that simultaneously supports layered division multiplexing technology and MIMO (Multi-Input Multi-Output) technology, and more particularly, to a power control technology for a multi-antenna signal.

[0002] To address the growing demand for ultra-high-definition broadcasting services, efficient use of frequency resources, and the integration of services requiring diverse regions and reception environments, technologies and standards for next-generation terrestrial broadcasting systems have recently been introduced. However, the growing demand for higher resolutions, hyper-realistic media such as AR (Artificial Reality) and VR (Virtual Reality), and additional data for enhanced user experiences, coupled with the lack of idle frequency resources due to the simultaneous provision of existing broadcasting services, necessitates further improvements in the transmission rates of terrestrial broadcasting systems.

[0003] The latest terrestrial digital broadcasting standards, such as ATSC 3.0, have attempted to overcome the transmission capacity limitations of a single broadcast frequency by applying multiple antenna technologies such as MIMO (Multiple Input Multiple Output), and have adopted layered division multiplexing technology in addition to TDM (Time Division Multiplexing) or FDM (Frequency Division Multiplexing) to support multiple services simultaneously.

[0004] MIMO used in ATSC 3.0 is a technology that increases transmission capacity by transmitting two data streams on a single RF (Radio Frequency) channel using orthogonal polarization antennas. At this time, the orthogonal polarization antennas are composed of two antennas whose polarizations are orthogonal to each other, and it takes into account the environment in which both vertical polarization antennas and horizontal polarization antennas are installed at the transmitter and receiver. This type of MIMO is called 2X2 cross-polarized MIMO. At this time, each polarization antenna can be referred to as antenna #1 (ANT 1) and antenna #2 (ANT 2), and in this case, antenna #1 can be a vertical polarization antenna and antenna #2 a horizontal polarization antenna, or conversely, antenna #1 can be a horizontal polarization antenna and antenna #2 a vertical polarization antenna.

[0005] Hierarchical division multiplexing is somewhat more complex than TDM and FDM, but it offers a high level of flexibility and improved system performance.

[0006] Layered division multiplexing (LDM) refers to a system that combines multiple layers into a single transmission layer. In its simplest form, a system with two layers—a core layer and an enhanced layer—is considered. The core layer typically refers to a layer with higher reception robustness than the enhanced layer. In the ATSC 3.0 standard, the transmit power allocated to the core layer is significantly greater than that allocated to the enhanced layer, inducing the receiver to prioritize decoding of the core layer.

[0007] The power ratio of the enhanced layer to the core layer is called the injection level, and the injection level information is transmitted to the receiver through L1 signaling.

[0008] Korean Patent Publication No. 10-2018-0132525 proposes a structure that combines MIMO and layered division multiplexing (LDM) technology for broadcast signal transmission and reception. Specifically, Korean Patent Publication No. 10-2018-0132525 discloses two structures: one in which MIMO is applied to both the core and enhanced layers, and one in which MIMO is applied to only one of the core or enhanced layers.

[0009] When MIMO is applied to a broadcast signal transmission / reception system, the receiver must be equipped with two antennas (a vertically polarized antenna and a horizontally polarized antenna) to fully restore the transmitted MIMO signal, and a conventional single-antenna receiver cannot receive a signal transmitted using the MIMO method. In other words, since MIMO separates a single service into two different streams and then transmits the separated streams to each antenna, a single-antenna receiver cannot restore the original service.

[0010] Therefore, when configuring LDM multiplexing including MIMO transmission signals, compatibility with existing single-antenna receivers must be considered.

[0011] If there is no need to ensure compatibility with existing single-antenna receivers, MIMO can be applied to both the core layer and the enhanced layer when applying LDM and MIMO technologies together.

[0012] However, when LDM and MIMO technologies are used together while ensuring compatibility with existing single-antenna receivers, the core layer can use SISO (Single Input Single Output) and the enhanced layer can use MIMO. In this case, SISO may not separate a single service into multiple streams and transmit them independently. Even when two antennas transmit the same signal, it can still be considered SISO.

[0013] Korean Patent Publication No. 10-2023-0130564 discloses an LDM and MIMO combined structure in which SISO is applied to the core layer and MIMO is applied to the enhanced layer. In the structure disclosed in Korean Patent Publication No. 10-2023-0130564, a SISO transmission signal is generated for the core layer, and a MIMO transmission signal is generated for the enhanced layer. At this time, the SISO receiver does not consider the MIMO signal (considering it as noise) and restores the core layer signal, and the MIMO receiver first restores the SISO signal (core layer signal) and then removes it from the received signal, and then restores the received signal from which the SISO signal has been removed using the MIMO method.

[0014] However, No. 10-2023-0130564 only presents LDM and its schematic combination structure when SISO and MIMO are used together, and is completely silent about the injection levels in the layered division multiplexing system when SISO and MIMO are used together, or the power control corresponding to the injection levels and signaling for the injection levels.

[0015] Therefore, there is an urgent need for a new layered division multiplexing technology that can efficiently perform power control corresponding to injection levels when LDM and MIMO technologies are used together.

[0016] An object of the present invention is to efficiently perform power control corresponding to injection levels when using hierarchical division multiplexing and MIMO technology together.

[0017] Furthermore, it is an object of the present invention to efficiently control the transmission powers of antennas (polarizations) when using layered division multiplexing and MIMO technology together while ensuring compatibility with existing SISO receivers.

[0018] In addition, it is an object of the present invention to prevent collision between signaling information for a legacy SISO receiver and signaling information for a MIMO receiver when a transmission signal to which LDM and MIMO are applied together is transmitted.

[0019] In order to achieve the above object, a broadcast signal transmission device according to the present invention includes an LDM combiner that outputs a first polarization signal corresponding to a first polarization and a second polarization signal corresponding to a second polarization; and a transmission signal generation unit that generates a first polarization transmission signal corresponding to the first polarization signal using a scaling factor of the first polarization, and generates a second polarization transmission signal corresponding to the second polarization signal using a scaling factor of the second polarization.

[0020] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization may correspond to the injection level of the hierarchical division multiplexing.

[0021] At this time, the scaling coefficient of the first polarization may correspond to polarization index 0, and the scaling coefficient of the second polarization may correspond to polarization index 1.

[0022] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization may be applied to values ​​corresponding to complex modulation values ​​that are not set for each polarization for the preamble, and may be applied to values ​​corresponding to complex modulation values ​​that are set for each polarization for at least one subframe.

[0023] At this time, for the first polarization, the power of the preamble symbol corresponding to the preamble may reference the data symbol power of the first subframe that activates the first polarization.

[0024] At this time, for the second polarization, the power of the preamble symbol corresponding to the preamble may refer to the data symbol power of the first subframe that activates the second polarization.

[0025] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization can be applied to power scaling performed in the IFFT (Inverse Fast Fourier Transform) stage.

[0026] At this time, the LDM coupling unit can hierarchically multiplex one of the core layer signal and the enhanced layer MIMO signals and output it as the first polarization signal, and output the other one of the enhanced layer MIMO signals as the second polarization signal.

[0027] At this time, the scaling factor of the first polarization can be maintained the same even if the injection level corresponding to the hierarchical division multiplexing changes.

[0028] At this time, the scaling factor of the second polarization may change as the injection level corresponding to the hierarchical division multiplexing changes.

[0029] At this time, the scaling factor of the second polarization may decrease as the injection level corresponding to the hierarchical division multiplexing increases.

[0030] In addition, a broadcast signal transmission method according to one embodiment of the present invention includes the steps of: outputting a first polarization signal corresponding to a first polarization and a second polarization signal corresponding to a second polarization; and generating a first polarization transmission signal corresponding to the first polarization signal using a scaling factor of the first polarization, and generating a second polarization transmission signal corresponding to the second polarization signal using a scaling factor of the second polarization.

[0031] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization may correspond to the injection level of the hierarchical division multiplexing.

[0032] At this time, the scaling coefficient of the first polarization may correspond to polarization index 0, and the scaling coefficient of the second polarization may correspond to polarization index 1.

[0033] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization may be applied to values ​​corresponding to complex modulation values ​​that are not set for each polarization for the preamble, and may be applied to values ​​corresponding to complex modulation values ​​that are set for each polarization for at least one subframe.

[0034] At this time, for the first polarization, the power of the preamble symbol corresponding to the preamble may refer to the data symbol power of the first subframe that activates the first polarization, and for the second polarization, the power of the preamble symbol corresponding to the preamble may refer to the data symbol power of the first subframe that activates the second polarization.

[0035] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization can be applied to power scaling performed in the IFFT (Inverse Fast Fourier Transform) stage.

[0036] At this time, the first polarization signal is generated by hierarchically multiplexing a core layer signal and one of the enhanced layer MIMO signals, and the other of the enhanced layer MIMO signals can be output as the second polarization signal.

[0037] At this time, the scaling factor of the first polarization remains the same even if the injection level corresponding to the hierarchical division multiplexing changes, and the scaling factor of the second polarization can change as the injection level corresponding to the hierarchical division multiplexing changes.

[0038] In addition, in one embodiment of the present invention, a broadcast signal receiving method includes: receiving a first polarization transmission signal generated based on a scaling factor of a first polarization and a second polarization transmission signal generated based on a scaling factor of a second polarization; restoring a core layer stream through decoding corresponding to at least one of the first polarization and the second polarization; and restoring an enhanced layer stream through MIMO decoding using first polarization enhanced layer symbols corresponding to the first polarization and second polarization enhanced layer symbols corresponding to the second polarization.

[0039] According to the present invention, when hierarchical division multiplexing and MIMO technology are used together, power control corresponding to injection levels can be efficiently performed.

[0040] In addition, the present invention can efficiently control the transmission powers of antennas (polarizations) when using layered division multiplexing and MIMO technology together while ensuring compatibility with existing SISO receivers.

[0041] In addition, the present invention can prevent collision between signaling information for a legacy SISO receiver and signaling information for a MIMO receiver when a transmission signal to which LDM and MIMO are applied together is transmitted.

[0042] Figures 1 and 2 are diagrams showing two transmission examples in which SISO is applied to the core layer and MIMO is applied to the enhanced layer.

[0043] FIG. 3 is a block diagram showing an example of a broadcast signal transmission device according to one embodiment of the present invention.

[0044] Fig. 4 is a block diagram showing an example of the LDM coupling unit illustrated in Fig. 3.

[0045] Figure 5 is a diagram showing an example of a SISO distributed pilot pattern corresponding to SP3_2.

[0046] FIG. 6 is a diagram showing an example of a Walsh-Hadamard encoded MIMO distributed pilot pattern corresponding to MP3_2.

[0047] FIG. 7 is a diagram showing an example of a null pilot encoded MIMO distributed pilot pattern corresponding to MP3_2.

[0048] FIG. 8 is a diagram showing an example of a transmission signal configuration when a SISO signal is transmitted only through one of two MIMO antennas.

[0049] FIG. 9 is a diagram showing an example of a transmission signal configuration when a SISO signal is transmitted through both MIMO antennas.

[0050] Figure 10 is a diagram comparing a SISO distributed pilot pattern and a MIMO distributed pilot pattern.

[0051] Fig. 11 is a block diagram showing an example of a broadcast signal transmission device using multiple transmission antennas and hierarchical division multiplexing.

[0052] FIG. 12 is a diagram showing a physical layer frame of a broadcast signal according to an embodiment of the present invention.

[0053] FIG. 13 is a diagram illustrating broadcast signal frames transmitted through two MIMO antennas according to one embodiment of the present invention.

[0054] Figure 14 is a flowchart illustrating a broadcast signal transmission method according to one embodiment of the present invention.

[0055] Figure 15 is a flowchart illustrating a broadcast signal receiving method according to one embodiment of the present invention.

[0056] Figure 16 is a block diagram showing a computer system configuration according to one embodiment of the present invention.

[0057] The present invention will be described in detail with reference to the attached drawings. Herein, repetitive descriptions, well-known functions that may unnecessarily obscure the gist of the present invention, and detailed descriptions of configurations are omitted. The embodiments of the present invention are provided to more fully explain the present invention to those of ordinary skill in the art. Accordingly, the shapes and sizes of elements in the drawings may be exaggerated for clarity.

[0058] Hereinafter, a preferred embodiment according to the present invention will be described in detail with reference to the attached drawings.

[0059] Figures 1 and 2 are diagrams showing two transmission examples in which SISO is applied to the core layer and MIMO is applied to the enhanced layer.

[0060] When configuring LDM multiplexing including MIMO transmission signals, the SISO method can be applied to the core layer and MIMO can be applied only to the enhanced layer, considering compatibility with existing single-antenna receivers.

[0061] Referring to FIG. 1, it can be seen that the SISO signal (LEGACY SERVICE) of the core layer is transmitted only through one (VERTICAL) of the two MIMO antennas (VERTICAL, HORIZONTAL), and the other MIMO antenna (HORIZONTAL) does not transmit the core layer signal.

[0062] Referring to FIG. 2, it can be seen that two MIMO antennas (VERTICAL, HORIZONTAL) transmit the SISO signal (LEGACY SERVICE) of the same core layer in the core layer, and transmit two MIMO signals (STREAM 1, STREAM 2) in the enhanced layer, respectively.

[0063] That is, in the example illustrated in FIG. 1, the SISO signal transmitted to the core layer is transmitted through only one antenna, and in the example illustrated in FIG. 2, the SISO signal transmitted to the core layer is transmitted through both antennas.

[0064] When LDM and MIMO technologies are used together in this combined form of SISO and MIMO, backward compatibility with existing SISO receivers must be guaranteed, so L1 signaling must be applicable to both SISO and MIMO receivers. Therefore, from the perspective of existing SISO receivers, L1 signaling fields must be transmitted in the same manner as in the existing SISO transmission method to ensure normal operation of the SISO receiver.

[0065] FIG. 3 is a block diagram showing an example of a broadcast signal transmission device according to one embodiment of the present invention.

[0066] Figure 3 shows an example of a transmitter configuration in which a SISO signal is transmitted through a core layer and a MIMO signal is transmitted through an enhanced layer.

[0067] Referring to FIG. 3, a broadcast signal transmission device according to one embodiment of the present invention includes a core layer signal generation unit (310), an enhanced layer MIMO signal generation unit (320), an LDM combining unit (330), and a transmission signal generation unit (340).

[0068] The core layer signal generation unit (310) generates a core layer signal (SISO signal).

[0069] The core layer signal generation unit (310) includes an input formatting unit (311) and a core layer BICM (Bit-Interleaved Coded Modulation) unit (312).

[0070] The input formatting unit (311) generates packetized data (baseband packets) in units of processing blocks of the transmission system. At this time, the transmission system can classify packets to which the same BICM (Bit Interleaved Coded Modulation) and transmission signal generation parameters are applied and define them as the same PLP (Physical Layer Pipe).

[0071] The core layer BICM unit (312) may include an FEC (Forward Error Correction) unit, a BIL (Bit Interleaver) unit, and a symbol mapping unit. At this time, the FEC unit may apply channel coding to baseband packets to generate FEC frames (FEC packets), which are groups of bits. At this time, the channel coding may be a single-structure method, or may be a method composed of multiple stages, such as inner and outer coding. At this time, the BIL unit may perform bit interleaving on the FEC frames output from the FEC unit. At this time, the symbol mapping unit may generate data cells for transmitting the output to be transmitted through the antenna for the output bit string of the BIL unit, and output them as core layer signals.

[0072] The enhanced layer MIMO signal generation unit (320) generates enhanced layer MIMO (Multiple Input Multiple Output) signals.

[0073] The enhanced layer MIMO signal generation unit (320) includes an input formatting unit (321), an enhanced layer BICM unit (322), and a MIMO precoder (323).

[0074] The input formatting unit (321) generates packetized data (baseband packets) in units of processing blocks of the transmission system. At this time, the transmission system can classify packets to which the same BICM (Bit Interleaved Coded Modulation) and transmission signal generation parameters are applied and define them as the same PLP (Physical Layer Pipe).

[0075] The enhanced layer BICM unit (322) may include an FEC (Forward Error Correction) unit, a BIL (Bit Interleaver) unit, and a MIMO (Multi-Input Multi-Output) MAP (mapping) unit. At this time, the FEC unit may apply channel coding to baseband packets to generate FEC frames, which are groups of bits. At this time, the channel coding may be a single-structure method, or may be a method composed of multiple stages, such as inner and outer coding. At this time, the BIL unit may perform bit interleaving on the FEC frames output from the FEC unit. At this time, the MIMO MAP unit may generate data cells for transmitting the output to each of the multiple antennas for the output bit string of the BIL unit. For this purpose, the MIMO MAP unit may be composed of two detailed blocks: a demultiplexer unit and a bit to IQ mapping unit. At this time, the demultiplexer unit can group the input bit stream according to the modulation order and the number of multiple antennas in order to convert the input bit stream into data cells. At this time, the bit stream corresponding to each group may be different depending on the modulation order and the number of multiple antennas. The bit-to-IQ mapping unit maps the output of the demultiplexer unit to constellations corresponding to groups of bits corresponding to each antenna output, and generates data cells corresponding to each antenna output. In one embodiment, even-numbered bits in a bit group can be mapped to data cells for the first antenna (first polarization), and odd-numbered bits can be mapped to data cells for the second antenna (second polarization). At this time, the grouping of each bit in the MIMO MAP unit or the constellation mapping of the bits using the same can be performed using various methods not illustrated. At this time, the first polarization can be vertical polarization, and the second polarization can be horizontal polarization.

[0076] Here, polarization can be the orientation of the electric field vector of a radiated electromagnetic wave with respect to the horizon as seen from the antenna. In other words, polarization can describe the orientation of the wave emitted from. This orientation can be planar or circular.

[0077] Hereinafter, the first antenna may be replaced with the first polarization, and the second antenna may be replaced with the second polarization.

[0078] Two groups of data cells are input to the MIMO precoder (323).

[0079] At this time, the MIMO precoder (323) may include a streaming combiner, an IQ polarization interleaving unit, and a phase hopping unit. At this time, the stream combiner may combine two data cells inputted and output them. At this time, the IQ polarization interleaving unit may exchange the quadrature components of the two data cells inputted and output them. At this time, the phase hopping unit may change the phase of the data cells inputted and output them. At this time, all three sub-blocks may operate while being activated, all may operate while being deactivated, or only some of the blocks may operate while being activated. In addition, each sub-block may output a different signal or the same signal depending on the channel coding rate and modulation order applied to the data cells inputted to each sub-block. The MIMO precoder (323) illustrated in FIG. 3 can output two data cells to be output through the first antenna (first polarization) and the second antenna (second polarization).

[0080] The LDM combiner (330) hierarchically multiplexes one of the core layer signal and the enhanced layer MIMO signals to output a first polarization signal corresponding to the first polarization (first antenna), and outputs the other one of the enhanced layer MIMO signals as a second polarization signal corresponding to the second polarization (second antenna).

[0081] At this time, the LDM coupling unit (330) can output the second polarization signal with unity power.

[0082] The transmission signal generation unit (340) generates a first polarization transmission signal using the first polarization signal, and generates a second polarization transmission signal using the second polarization signal.

[0083] The transmission signal generation unit (340) includes framing & interleaving units (341, 342) and waveform generators (345, 346).

[0084] Time interleaving, frame generation (including preamble), and frequency interleaving can be performed in the framing & interleaving unit (341) on the first polarization signal output through the LDM combining unit (330). The output of the framing & interleaving unit (341) is input to the waveform generator (345) and output to the first antenna as the first polarization transmission signal.

[0085] Time interleaving, frame generation (including preamble), and frequency interleaving can be performed in the framing & interleaving unit (342) on the second polarization signal output through the LDM coupling unit (330). The output of the framing & interleaving unit (342) is input to the waveform generator (346) and output to the second antenna as the second polarization transmission signal.

[0086] The framing & interleaving units (341, 342) illustrated in FIG. 3 can each generate a signal corresponding to a frame to be transmitted via an antenna using data cells input as input. At this time, the framing & interleaving units (341, 342) may or may not activate and perform time interleaving for each input data cell. At this time, the framing & interleaving units (341, 342) may each perform framing for configuring preamble symbols and subframes for each data cell. At this time, the preamble symbol may not include a data cell. At this time, frequency interleaving may or may not be activated and applied.

[0087] Depending on the embodiment, the first polarization transmission signal and the second polarization transmission signal may each include a preamble, but only one of them may include a preamble.

[0088] If the first polarization transmission signal includes a first preamble and the second polarization transmission signal includes a second preamble, the first preamble and the second preamble may each include a 1-bit L1B_mimo_scattered_pilot_encoding field set to 0. Furthermore, the first preamble and the second preamble may include the same L1 signaling information.

[0089] If only one of the first polarization transmission signal and the second polarization transmission signal includes a preamble, this preamble can be applied not only to the polarization (antenna) transmitting the preamble but also to the other polarization (antenna). For example, if only the first polarization transmission signal includes a preamble, the signaling fields included in this preamble can be used by both the first polarization and the second polarization.

[0090] The grouped data cells, which are outputs of the framing & interleaving units (341, 342), are input to the waveform generators (345, 346). At this time, the waveform generators (345, 346) may each perform an inverse fast Fourier transform (IFFT) after pilot insertion and insert a guard interval symbol. In addition, the waveform generators (345, 346) may each generate a bootstrap symbol and output it by positioning it at the very beginning of the transmission frame.

[0091] In particular, the waveform generator (346) may apply power scaling for the second polarization in the IFFT stage according to an injection level corresponding to the second polarization (which may be the same as the injection level corresponding to the first polarization). At this time, the power of the second polarization transmission signal may be lower than the power of the first polarization transmission signal.

[0092] Information about the scattered pilots inserted through the waveform generators (345, 346) may be included in the preamble generated by the framing & interleaving units (341, 342).

[0093] FIG. 4 is a block diagram showing an example of the LDM coupling unit (330) illustrated in FIG. 3.

[0094] Referring to FIG. 4, the LDM coupling unit (330) includes an injection level controller (410), a coupler (420), and a power normalizer (430).

[0095] The LDM coupling unit (330) is a core layer signal (S C ) and enhanced layer MIMO signals (S E,1 , S E,2 ) one of (S E,1 ) is hierarchically divided into multiplexes to generate the first polarization signal (β(S) corresponding to the first polarization (POLARIZATION #1). C + αS E,1 )) and output enhanced layer MIMO signals (S E,1 , S E,2 ) another one (S) E,2 ) is output as a second polarization signal corresponding to the second polarization.

[0096] The injection level controller (410) provides enhanced layer MIMO signals (S) for hierarchical division multiplexing. E,1 , S E,2 ) one of (S E,1 ) to control the power.

[0097] The coupler (420) is a core layer signal (S C ) and one of the enhanced layer signals (αS) whose power is controlled by the injection level controller (410). E,1 ) are combined.

[0098] The power normalizer (430) performs transmission power normalization and outputs a first polarization signal.

[0099] In this way, the LDM combining unit illustrated in FIG. 4 combines the core layer signal and the enhanced layer signal through hierarchical division multiplexing for the first polarization, but for the second polarization, the combination of the two layer signals through hierarchical division multiplexing is not performed and the input MIMO signal (S E,2 ) is output as is. That is, in the structure illustrated in FIG. 4, constellation-superposed signals are transmitted only in the first polarization (POLARIZATION #1), and the second polarization (POLARIZATION #2) can transmit a dedicated MIMO stream composed solely of enhanced layer cells.

[0100] At this time, in the first polarization, at least one SISO (Single Input Single Output) PLP (Physical Layer Pipe) and at least one MIMO PLP superposed with the at least one SISO PLP can share pilot cells. That is, the SISO PLP(s) and MIMO PLP(s) superposed by the broadcast signal transmission apparatus illustrated in FIGS. 3 and 4 can share pilot cells transmitted through the first polarization (first antenna). This can be viewed as the pilot cells transmitted through the first polarization (first antenna) of the broadcast signal transmission apparatus illustrated in FIGS. 3 and 4 being shared by the core layer used for SISO transmission and the enhanced layer used for MIMO transmission.

[0101] At this time, the first polarization transmission signal and the second polarization transmission signal may be generated using only the first MIMO distributed pilot encoding among the first MIMO distributed pilot encoding that transmits pilots to the same OFDM cell positions for the first polarization and the second polarization, and the second MIMO distributed pilot encoding that transmits pilots to different OFDM cell positions for the first polarization and the second polarization.

[0102] At this time, the first MIMO distributed pilot encoding may correspond to a first group in which identical pilots are transmitted for the first polarization and the second polarization, and a second group in which pilots with opposite phases are transmitted for the first polarization and the second polarization.

[0103] At this time, the second MIMO distributed pilot encoding may correspond to a first group in which only pilots for the first polarization are transmitted with valid power and pilots for the second polarization are transmitted with null power, and a second group in which only pilots for the second polarization are transmitted with valid power and pilots for the first polarization are transmitted with null power.

[0104] At this time, the first MIMO distributed pilot encoding may be Walsh-Hadamard encoding, and the second MIMO distributed pilot encoding may be null pilot encoding.

[0105] At this time, at least one of the first polarization transmission signal and the second polarization transmission signal may include a preamble. At this time, the preamble may include a 1-bit L1B_mimo_scattered_pilot_encoding field set to 0.

[0106] At this time, the 1-bit L1B_mimo_scattered_pilot_encoding field set to 0 can indicate both a MIMO pilot pattern with Walsh-Hadamard encoding and the SISO pilot pattern simultaneously.

[0107] In this way, when considering a conventional single-antenna receiver in a broadcast signal transmitter that uses LDM and MIMO together, a collision may occur between the pilot pattern for the MIMO terminal and the pilot pattern for the SISO terminal (between the signaling information of the pilot pattern for the MIMO terminal and the signaling information of the pilot pattern for the SISO terminal).

[0108] In the ATSC 3.0 broadcast system, L1B_first_sub_scattered_pilot_pattern (for the first subframe) and L1D_scattered_pilot_pattern (for other subframes) are used as scattered pilot pattern identification fields, and the scattered pilot pattern is signaled through these fields.

[0109] These fields are signaling fields commonly used for SISO transmission and MIMO transmission, and the receiver can distinguish whether it is a SISO distributed pilot pattern or a MIMO distributed pilot pattern by combining these fields with other MIMO-related fields (e.g., L1B_first_sub_mimo (for the first subframe) and L1D_mimo (for other subframes)) and then find out the exact distributed pilot pattern.

[0110] At this time, L1B_first_sub_mimo and L1D_mimo can indicate whether MIMO transmission is applied to the corresponding subframe.

[0111] That is, even if L1B_first_sub_scattered_pilot_pattern or L1D_scattered_pilot_pattern has the same value, depending on whether it is SISO transmission or MIMO transmission, the scattered pilot pattern may be interpreted as a SISO pattern as shown in Table 1 below, or as a MIMO pattern as shown in Table 2 below.

[0112] ValueSP patternValueSP patternValueSP pattern00000SP3_201000SP12_210000Reserved00001SP3_401001SP12_4......00010SP4_201010SP16_2......00011SP4_401011SP16_4.. ....00100SP6_201100SP24_2......00101SP6_401101SP24_4......00110SP8_201110SP32_2......00111SP8_401111SP32_411111Reserved

[0113] Table 1 shows the signaling formats of L1D_scattered_pilot_pattern and L1B_first_sub_scattered_pilot_pattern for SISO.

[0114] ValueSP patternValueSP patternValueSP pattern00000MP3_201000MP12_210000Reserved00001MP3_401001MP12_4......00010MP4_201010MP16_2......00011MP4_401011MP16_4.. ....00100MP6_201100MP24_2......00101MP6_401101MP24_4......00110MP8_201110MP32_2......00111MP8_401111MP32_411111Reserved

[0115] Table 2 shows the signaling formats of L1D_scattered_pilot_pattern and L1B_first_sub_scattered_pilot_pattern for MIMO.

[0116] In Tables 1 and 2, SP represents SISO Pilot and MP represents MIMO Pilot.

[0117] Ultimately, when considering the existing SISO receiver and combining LDM and MIMO technologies to transmit SISO and MIMO signals in the same subframe, both the SISO receiver and the MIMO receiver must be able to simultaneously receive accurate scattered pilot pattern information through a common signaling field, L1B_first_sub_scattered_pilot_pattern or L1D_scattered_pilot_pattern. This means that L1B_first_sub_scattered_pilot_pattern or L1D_scattered_pilot_pattern must be compatible with both SISO and MIMO.

[0118] For example, if L1B_first_sub_scattered_pilot_pattern or L1D_scattered_pilot_pattern is 00000, the SISO receiver must perform channel estimation through SP3_2 in Table 1, and the MIMO receiver must perform channel estimation through MP3_2 in Table 2.

[0119] In order to receive a MIMO transmission signal, it is necessary to estimate the first polarization channel and the second polarization channel separately, and therefore, distinguishable pilot signals are transmitted to both the first polarization (first antenna) and the second polarization (second antenna).

[0120] The MIMO distributed pilot pattern used in ATSC 3.0 systems is defined using either Walsh-Hadamard encoding or null-pilot encoding.

[0121] The pilot pattern corresponding to Walsh-Hadamard encoding is such that both the first polarization and the second polarization transmit their respective pilots at the same OFDM cell locations. That is, Walsh-Hadamard encoding designs the sequences corresponding to the pilots for the first polarization and the sequences corresponding to the pilots for the second polarization to be orthogonal, so that only the corresponding pilots can be extracted from each transmission channel.

[0122] The pilot pattern corresponding to the null pilot encoding is such that the second polarization is muted at the position where the first polarization transmits the pilot, and the first polarization is muted at the position where the second polarization transmits the pilot.

[0123] Comparing the SISO distributed pilot pattern, the MIMO Walsh-Hadamard distributed pilot pattern, and the MIMO null-pilot distributed pilot pattern signaled with the same 5-bit value in Tables 1 and 2 above, the following relationship can be confirmed.

[0124] The first polarization (first antenna) portion of the MIMO Walsh-Hadamard distributed pilot pattern transmits pilot signals identical to the SISO distributed pilot pattern to the same OFDM cell location.

[0125] The first polarization (first antenna) portion of the MIMO null-pilot distributed pilot pattern transmits pilot signals at only half of the pilot positions of the SISO distributed pilot pattern.

[0126] This relationship can be summarized as shown in Table 3 below.

[0127] Pilot EncodingAlgorithmAntennaScatteredPilotSubframeBoundaryPilotCommonContinualPilotAdditionalContinualPilotEdgePilotWalsh-Hadamard#1SISOSISOSISOSISOSISO#2WHWHSISOSISO / WHWHNull Pilot#1NPSISOSISOSISO / NPSISO#2NPWHSISOSISO / NPWH

[0128] In Table 3, WH represents Walsh-Hadamard and NP represents Null Pilot.

[0129] Figures 5, 6 and 7 illustrate SISO scattered pilot patterns, MIMO Walsh-Hadamard scattered pilot patterns and MIMO null-pilot scattered pilot patterns when 5-bit L1B_first_sub_scattered_pilot_pattern or L1D_scattered_pilot_pattern is 00000.

[0130] Figure 5 is a diagram showing an example of a SISO distributed pilot pattern corresponding to SP3_2.

[0131] Referring to Figure 5, D for SISO X = 3 and D Y = You can find out the pilot positions in case 2.

[0132] FIG. 6 is a diagram showing an example of a Walsh-Hadamard encoded MIMO distributed pilot pattern corresponding to MP3_2.

[0133] Referring to FIG. 6, it can be seen that the OFDM cell locations of the SISO distributed pilot pattern corresponding to SP3_2 and the OFDM cell locations of the Walsh-Hadamard encoded MIMO distributed pilot pattern corresponding to MP3_2 are basically the same.

[0134] The Walsh-Hadamard encoded MIMO distributed pilot pattern illustrated in FIG. 6 transmits the same pilots as illustrated in FIG. 5 in both group 1 positions and group 2 positions for the first polarization. At this time, for the second polarization, the same pilots as those for the first polarization are transmitted in group 1 positions, and pilots that are opposite in phase to the pilots for the first polarization are transmitted in group 2 positions.

[0135] That is, in the Walsh-Hadamard encoded MIMO distributed pilot pattern illustrated in FIG. 6, the same pilots as the SISO distributed pilot pattern illustrated in FIG. 5 are transmitted in the first polarization, and in the second polarization, only some pilots are transmitted with their phases reversed at the same positions as the SISO distributed pilot pattern illustrated in FIG. 5.

[0136] FIG. 7 is a diagram showing an example of a null pilot encoded MIMO distributed pilot pattern corresponding to MP3_2.

[0137] Referring to FIG. 7, it can be seen that the OFDM cell locations of the Walsh-Hadamard encoded MIMO distributed pilot pattern corresponding to MP3_2 are basically the same as the OFDM cell locations of the null-pilot encoded MIMO distributed pilot pattern corresponding to MP3_2, except for the grouping.

[0138] However, the null-pilot encoded MIMO distributed pilot pattern illustrated in FIG. 7 transmits pilots only at group 1 positions for the first polarization, and transmits pilots only at group 2 positions for the second polarization.

[0139] That is, the null-pilot encoded MIMO distributed pilot pattern illustrated in FIG. 7 transmits pilot signals only at half of the pilot positions (group 1 positions) of the SISO distributed pilot pattern distributed pilot pattern illustrated in FIG. 5 in the first polarization. Similarly, the null-pilot encoded MIMO distributed pilot pattern transmits pilot signals only at the other half of the pilot positions (group 2 positions) of the SISO distributed pilot pattern distributed pilot pattern illustrated in FIG. 5 in the second polarization.

[0140] In a broadcast signal transmission / reception system combining LDM and MIMO, the core layer and the enhanced layer may need to use the same pilot signal to prevent increased receiver complexity and reduce the burden of receiver memory usage.

[0141] The broadcast signal transmitter having the structure described through FIGS. 3 and 4 transmits a broadcast signal combining SISO and MIMO, taking into account a conventional single-antenna receiver, and the single-antenna receiver can only receive the first polarization signal. In such an environment, if a null pilot pattern is applied as a distributed pilot pattern, the SISO receiver will use the interference signal transmitted in the second polarization for pilot-based channel estimation using the corresponding PLP (Physical Layer Pipe), which may result in misestimation.

[0142] Meanwhile, when transmitting a broadcast signal combining SISO and MIMO by combining LDM and MIMO technologies, if a null-pilot pattern is applied, a conflict may occur with the L1-basic and L1-detail signaling for the existing SISO service.

[0143] The existing ATSC 3.0 broadcast system sets the L1B_mimo_scattered_pilot_encoding field (L1-Basic signaling field) to 0 in the following two cases.

[0144] - When the Walsh-Hadamard pilot pattern is used

[0145] - If there is no subframe with MIMO applied within the transmission frame

[0146] When receiving a subframe that combines SISO and MIMO by combining LDM and MIMO technologies, it may be desirable for the SISO receiver to be unaware of the presence of the enhanced layer transmitted in the form of MIMO. Therefore, in this case, L1B_first_sub_mimo (for the first subframe) or L1D_mimo (for other subframes) should be set to 0. In this case, L1B_first_sub_mimo and L1D_mimo may be fields indicating whether MIMO is applied to the corresponding subframe (in principle, they are set to 1 if MIMO is applied). In this way, even though MIMO is applied to the enhanced layer, if L1B_first_sub_mimo (for the first subframe) or L1D_mimo (for other subframes) is set to 0, the MIMO receiver may operate based on other MIMO-related fields other than these fields to identify the MIMO pilot pattern.

[0147] When the core layer transmits a SISO signal and only the enhanced layer applies MIMO, there may be no MIMO subframes in the transmission frame other than the subframes in which SISO and MIMO are combined with LDM, and there may be MIMO subframes in the transmission frame other than the subframes in which SISO and MIMO are combined with LDM.

[0148] If there are no MIMO subframes in a transmission frame other than the subframes in which SISO and MIMO are combined with LDM, and a null-pilot pattern is applied to the subframes in which SISO and MIMO are combined with LDM, and L1B_mimo_scattered_pilot_encoding must be set to 1, then this is not desirable because it causes a conflict with L1B_first_sub_mimo or L1D_mimo set to 0 in the received preamble from the perspective of the existing SISO receiver.

[0149] In the case where a MIMO subframe exists in a transmission frame other than the subframes in which SISO and MIMO are LDM-combined, a signaling collision may not occur if other MIMO subframes in the transmission frame apply the null pilot pattern. However, even in this case, considering the situation where a single scattered pilot pattern identification field (L1B_first_sub_scattered_pilot_pattern or L1D_scattered_pilot_pattern) is shared by the SISO receiver and the MIMO receiver, it is desirable to prohibit the use of the null pilot pattern and use only the Walsh-Hadamard pilot pattern. In this case, the Walsh-Hadamard pilot pattern may be applied to the enhanced layer of the broadcast signal transmission device of FIGS. 3 and 4 regardless of the value signaled in L1B_mimo_scattered_pilot_encoding.

[0150] Ultimately, when transmitting a broadcast signal combining SISO and MIMO by combining LDM and MIMO technologies, only Walsh-Hadamard encoding among null-pilot encoding and Walsh-Hadamard encoding can be allowed as pilot encoding.

[0151] At this time, the 1-bit signaling field L1B_mimo_scattered_pilot_encoding can be set to 0, which can indicate both a MIMO pilot pattern with Walsh-Hadamard encoding and the SISO pilot pattern simultaneously.

[0152] The core layer and the enhanced layer can share pilots not only when MIMO is applied to both the core layer and the enhanced layer, but also when SISO is applied to the core layer and MIMO is applied only to the enhanced layer.

[0153] FIG. 8 is a diagram showing an example of a transmission signal configuration when a SISO signal is transmitted only through one of two MIMO antennas.

[0154] Referring to FIG. 8, it can be seen that in the first polarization (V-POL), the core layer signal and the enhanced layer signal are transmitted together, and in the second polarization (H-POL), only the enhanced layer signal is transmitted.

[0155] The example illustrated in Fig. 8 is an example in which the Walsh-Hadamard pilot pattern is applied, and it can be seen that the distributed pilot pattern is applied equally to the core layer and the enhanced layer in the first polarization (V-POL). In the example illustrated in Fig. 8, the phases of the pilots of some cell positions in the second polarization (H-POL) are opposite to those of the pilots in the first polarization.

[0156] FIG. 9 is a diagram showing an example of a transmission signal configuration when a SISO signal is transmitted through both MIMO antennas.

[0157] Referring to FIG. 9, it can be seen that the core layer signal and the enhanced layer signal are transmitted together in the first polarization (V-POL) and the second polarization (H-POL).

[0158] The example illustrated in Fig. 9 is an example in which the Walsh-Hadamard pilot pattern is applied. It can be seen that the distributed pilot pattern is applied equally to the core layer and the enhanced layer in the first polarization (V-POL) and the second polarization (H-POL). In the example illustrated in Fig. 9, the phases of the pilots of some cell positions in the second polarization (H-POL) are opposite to those of the pilots in the first polarization.

[0159] Figure 10 is a diagram comparing a SISO distributed pilot pattern and a MIMO distributed pilot pattern.

[0160] Referring to Fig. 10, it can be seen that in the first polarization (V-POL), the Walsh-Hadamard encoded MP3_2 MIMO distributed pilot pattern is completely identical to the SISO SP3_2 distributed pilot pattern. In the second polarization (H-POL), the phases of the pilots at the pilot positions corresponding to the second group are inverted.

[0161] Fig. 11 is a block diagram showing an example of a broadcast signal transmission device using multiple transmission antennas and hierarchical division multiplexing.

[0162] Referring to FIG. 11, a broadcast signal transmission device using multiple transmission antennas and layered division multiplexing according to one embodiment of the present invention includes a core layer MIMO signal generation unit (1110), an enhanced layer MIMO signal generation unit (1120), an LDM combining unit (1130), an L1 signaling generation unit (1140), and a transmission signal generation unit (1150).

[0163] The core layer MIMO signal generation unit (1110) generates core layer MIMO signals.

[0164] At this time, the core layer MIMO signal generation unit (1110) may include a core layer FEC (Forward Error Correction) encoder (1111), a core layer bit-interleaver (1112), a core layer MIMO demux (DEMUX; Demultiplexer) (1113), core layer symbol mappers (1114, 1115), and a core layer MIMO precoder (1116).

[0165] The core layer FEC encoder (1111) can apply channel coding to baseband packets corresponding to the core layer to generate FEC frames (FEC packets), which are groups of bits. At this time, the channel coding may be a single-structure method or a method composed of multiple stages, such as inner and outer coding.

[0166] The core layer bit interleaver (1112) can perform bit interleaving on FEC frames output from the core layer FEC encoder (1111).

[0167] The core layer MIMO demux (1113) and core layer symbol mappers (1114, 1115) can generate data cells for transmitting output to each of the multiple antennas for the output bit stream of the core layer bit-interleaver (1112). That is, the core layer MIMO demux (1113) can group the input bit stream according to the modulation order and the number of multiple antennas in order to convert it into data cells. At this time, the core layer MIMO demux (1113) can map even index bits in the FEC-encoded bit stream that has undergone bit interleaving to the first antenna (polarization) and odd index bits to the second antenna (polarization). At this time, the bit stream corresponding to each group can be different depending on the modulation order and the number of multiple antennas. The core layer symbol mappers (1114, 1115) map the output of the core layer MIMO demux (1113) to constellations corresponding to groups of bits corresponding to each antenna (polarization) output, and generate data cells corresponding to each antenna output. In one embodiment, even-numbered bits in a bit group may be mapped to data cells for a first antenna (ANTENNA 1), and odd-numbered bits may be mapped to data cells for a second antenna (ANTENNA 2). At this time, the grouping of each bit or the constellation mapping of the bits using the same in the core layer symbol mappers (1114, 1115) may be performed using various methods not illustrated.

[0168] Groups of two different data cells are input to a core layer MIMO precoder (1116). At this time, the core layer MIMO precoder (1116) can perform signal processing for spatial multiplexing and can adjust the first antenna (polarization) signal and the second antenna (polarization) signal in units of OFDM cells (constellation symbols).

[0169] At this time, the core layer MIMO precoder (1116) may include a streaming combiner, an IQ polarization interleaving unit, and a phase hopping unit. At this time, the stream combiner may combine two data cells inputted and output them. At this time, the IQ polarization interleaving unit may exchange the quadrature components of the two data cells inputted and output them. At this time, the phase hopping unit may change the phase of the data cells inputted and output them. At this time, all three sub-blocks may be activated and operated, all may be deactivated and operated, or only some of the blocks may be activated and operated. In addition, each sub-block may output a different signal or the same signal depending on the channel coding rate and modulation order applied to the data cells inputted to each sub-block. The core layer MIMO precoder (1116) illustrated in FIG. 11 can output two data cells to be output through the first antenna (ANTENNA 1) and the second antenna (ANTENNA 2). That is, two output signals are generated from the core layer MIMO signal generation unit (1110), one of which is a signal for transmission using the first antenna (ANTENNA 1), and the other is a signal for transmission using the second antenna (ANTENNA).

[0170] The first antenna (ANTENNA 1) and the second antenna (ANTENNA 2) may correspond to a first polarization and a second polarization, respectively. That is, the first antenna (ANTENNA 1) may correspond to a first polarization, and the second antenna (ANTENNA 2) may correspond to a second polarization. For example, the first polarization may be vertical polarization, and the second polarization may be horizontal polarization.

[0171] Here, polarization can be the orientation of the electric field vector of a radiated electromagnetic wave with respect to the horizon as seen from the antenna. In other words, polarization can describe the orientation of the wave emitted from. This orientation can be planar or circular.

[0172] Hereinafter, the first antenna may be replaced with the first polarization, and the second antenna may be replaced with the second polarization.

[0173] The enhanced layer MIMO signal generation unit (1120) generates enhanced layer MIMO signals.

[0174] At this time, the enhanced layer MIMO signal generation unit (1120) may include an enhanced layer FEC (Forward Error Correction) encoder (1121), an enhanced layer bit-interleaver (1122), an enhanced layer MIMO demux (DEMUX; Demultiplexer) (1123), enhanced layer symbol mappers (1124, 1125), and an enhanced layer MIMO precoder (1126).

[0175] The enhanced layer FEC encoder (1121) can apply channel coding to baseband packets corresponding to the enhanced layer to generate FEC frames (FEC packets), which are groups of bits. At this time, the channel coding may be a single-structure method or a method composed of multiple stages, such as inner and outer coding.

[0176] The enhanced layer bit-interleaver (1122) can perform bit interleaving on FEC frames output from the enhanced layer FEC encoder (1121).

[0177] The enhanced layer MIMO demux (1123) and the enhanced layer symbol mappers (1124, 1125) can generate data cells for transmitting output to each of the multiple antennas for the output bit stream of the enhanced layer bit-interleaver (1122). That is, the enhanced layer MIMO demux (1123) can group the input bit stream according to the modulation order and the number of multiple antennas in order to convert it into data cells. At this time, the enhanced layer MIMO demux (1123) can map even index bits in the FEC-encoded bit stream that has undergone bit interleaving to the first antenna (polarization) and odd index bits to the second antenna (polarization). At this time, the bit stream corresponding to each group can be different depending on the modulation order and the number of multiple antennas. Enhanced layer symbol mappers (1124, 1125) map the output of the enhanced layer MIMO demux (1123) to constellations corresponding to groups of bits corresponding to each antenna (polarization) output, and generate data cells corresponding to each antenna output. In one embodiment, even-numbered bits in a bit group may be mapped to data cells for a first antenna (ANTENNA 1), and odd-numbered bits may be mapped to data cells for a second antenna (ANTENNA 2). At this time, the grouping of each bit or the constellation mapping of the bits using the same in the enhanced layer symbol mappers (1124, 1125) may be performed using various methods not illustrated.

[0178] Groups of two different data cells are input to an enhanced layer MIMO precoder (1126). At this time, the enhanced layer MIMO precoder (1126) can perform signal processing for spatial multiplexing and can adjust the first antenna (polarization) signal and the second antenna (polarization) signal in units of OFDM cells (constellation symbols).

[0179] At this time, the enhanced layer MIMO precoder (1126) may include a streaming combiner, an IQ polarization interleaving unit, and a phase hopping unit. At this time, the stream combiner may combine two data cells inputted and output them. At this time, the IQ polarization interleaving unit may exchange the quadrature components of the two data cells inputted and output them. At this time, the phase hopping unit may change the phase of the data cells inputted and output them. At this time, all three sub-blocks may be activated and operated, all may be deactivated and operated, or only some of the blocks may be activated and operated. In addition, each sub-block may output a different signal or the same signal depending on the channel coding rate and modulation order applied to the data cells inputted to each sub-block. The enhanced layer MIMO precoder (1126) illustrated in FIG. 11 can output two data cells to be output through the first antenna (ANTENNA 1) and the second antenna (ANTENNA 2). That is, two output signals are generated from the enhanced layer MIMO signal generation unit (1120), one of which is a signal for transmission using the first antenna (ANTENNA 1), and the other is a signal for transmission using the second antenna (ANTENNA).

[0180] At this time, the core layer MIMO signals may be generated based on core layer MIMO precoding, and the enhanced layer MIMO signals may be generated based on enhanced layer MIMO precoding.

[0181] At this time, the core layer MIMO precoding and the enhanced layer MIMO precoding may be performed using at least one of stream combining, IQ polarization interleaving, and phase hopping, respectively.

[0182] At this time, if the IQ polarization interleaving corresponding to the core layer is activated, the IQ polarization interleaving corresponding to the enhanced layer can be activated.

[0183] At this time, if phase hopping corresponding to the core layer is activated, phase hopping corresponding to the enhanced layer can be activated.

[0184] At this time, the stream combining, the IQ polarization interleaving and the phase hopping may correspond to the first MIMO field, the second MIMO field and the third MIMO field, respectively.

[0185] At this time, the second MIMO field corresponding to the core layer and the second MIMO field corresponding to the enhanced layer may be set identically, and the third MIMO field corresponding to the core layer and the third MIMO field corresponding to the enhanced layer may be set identically.

[0186] The LDM combiner (1130) performs layered division multiplexing on the core layer MIMO signals and the enhanced layer MIMO signals to generate a first superposition signal (first polarization signal) corresponding to the first polarization and a second superposition signal (second polarization signal) corresponding to the second polarization.

[0187] At this time, the LDM coupling unit (1130) may include injection level controllers (1131, 1132), couplers (1133, 1134) and power normalizers (1135, 1136).

[0188] That is, through the LDM coupling unit, the transmission power of the enhanced layer MIMO signals for the first antenna (ANTENNA 1) and the second antenna (ANTENNA 2) is adjusted by the injection level controllers (1131, 1132) according to a predetermined power injection level (IL). At this time, the power of the enhanced layer MIMO signal for the first antenna (ANTENNA 1) is adjusted by the injection level controller (1131), and the power of the enhanced layer MIMO signal for the second antenna (ANTENNA 2) is adjusted by the injection level controller (1132).

[0189] Therefore, in the LDM coupling unit (1130) illustrated in FIG. 11, two injection levels are used.

[0190] At this time, the injection levels can each represent a power ratio of the enhanced layer to the core layer, and information for signaling the injection level can be included in the L1 signaling fields.

[0191] The enhanced layer MIMO signal for the first antenna (ANTENNA 1) with adjusted power is added to the core layer MIMO signal for the first antenna (ANTENNA 1) by a combiner (1133), and the enhanced layer MIMO signal for the second antenna (ANTENNA 2) with adjusted power is added to the core layer MIMO signal for the second antenna (ANTENNA 2) by a combiner (1134).

[0192] The signal added through the coupler (1133) goes through transmission power normalization by the power normalizer (1135) and is output as a first superposition signal (first polarization signal), and the signal added through the coupler (1134) goes through transmission power normalization by the power normalizer (1136) and is output as a second superposition signal (second polarization signal).

[0193] The transmission signal generation unit (1150) generates a first polarization transmission signal including a first preamble corresponding to the first polarization and a second polarization transmission signal including a second preamble corresponding to the second polarization.

[0194] At this time, the transmission signal generation unit (1150) includes framing & interleaving units (1151, 1152) and waveform generators (1153, 1154).

[0195] Time interleaving, frame generation (including preamble), and frequency interleaving can be performed in the framing & interleaving unit (1151) on the first superposition signal output through the power normalizer (1135). The output of the framing & interleaving unit (1151) is input to the waveform generator (1153) and output to the first antenna as the first polarization transmission signal.

[0196] Time interleaving, frame generation (including preamble), and frequency interleaving can be performed in the framing & interleaving unit (1152) on the second superposition signal output through the power normalizer (1136). The output of the framing & interleaving unit (1152) is input to the waveform generator (1154) and output to the second antenna as a second polarization transmission signal.

[0197] The framing & interleaving units (1151, 1152) illustrated in FIG. 11 can each generate a signal corresponding to a frame to be transmitted via an antenna using data cells inputted as input. At this time, the framing & interleaving units (1151, 1152) may or may not activate and perform time interleaving for each input data cell. At this time, the framing & interleaving units (1151, 1152) may perform framing for each data cell, configuring a preamble symbol and a subframe. At this time, the preamble symbol may not include a data cell. At this time, frequency interleaving may or may not be activated and applied.

[0198] The grouped data cells, which are the outputs of the framing & interleaving units (1151, 1152), are input to the waveform generators (1153, 1154). At this time, the waveform generators (1153, 1154) may each perform an inverse fast Fourier transform (IFFT) after pilot insertion and insert a guard interval symbol. In addition, the waveform generators (1153, 1154) may each generate a bootstrap symbol and output it by positioning it at the very beginning of the transmission frame. At this time, each of the waveform generators (1153, 1154) may activate and apply the MISO (Multiple-Input Single-Output) signal processing function or may deactivate and not apply it.

[0199] The L1 signaling generation unit (1140) can generate injection level signaling information regarding two injection levels corresponding to the enhanced layer MIMO signals.

[0200] That is, the injection level information (IL INFO) for the enhanced layer MIMO signal for the first antenna (or polarization) and the injection level information (IL INFO) for the enhanced layer MIMO signal for the second antenna (or polarization) are used by the injection level controllers (1131, 1132) and are also transmitted to and used by the power normalizers (1135, 1136). At this time, the power normalizers (1135, 1136) each multiply the size of the combined signal by a normalizing factor calculated from the injection level information to adjust the power of the input signal to an appropriate level.

[0201] At this time, the injection level information (IL INFO) for the enhanced layer MIMO signal for the first antenna (or polarization) and the injection level information (IL INFO) for the enhanced layer MIMO signal for the second antenna (or polarization) are transmitted to the L1 signaling generation unit (1140), so that L1 signaling information to be included in the preamble and transmitted is generated. That is, the injection level signaling information included in the L1 signaling information is modulated and transmitted by the framing & interleaving units (1135, 1136) by being included in the preamble.

[0202] At this time, since there are two injection level controllers (1131, 1132), there are two injection levels used, and there are also two preambles generated from the framing & interleaving units (1151, 1152).

[0203] The injection levels of the injection level controllers (1131, 1132) may be set to the same injection level or may be set to different injection levels.

[0204] The first preamble generated by the framing & interleaving unit (1151) and the second preamble generated by the framing & interleaving unit (1152) may each include only the first injection level information (when the injection levels of the injection level controllers (1131, 1132) are the same) or may include both the first injection level information and the second injection level information (when the injection levels of the injection level controllers (1131, 1132) are different). In this case, the first injection level signaling information included in the first preamble and the first injection level signaling information included in the second preamble may be the same. Similarly, the second injection level signaling information included in the first preamble and the second injection level signaling information included in the second preamble may be the same. Furthermore, the entire L1 signaling information included in the first preamble may be identical to the entire L1 signaling information included in the second preamble. That is, the first preamble transmitted for the first polarization and the second preamble transmitted for the second polarization may be configured with the same modulation signals and set identically, and their transmission powers may be identical or different.

[0205] At this time, the first preamble and the second preamble may include the same 5-bit injection level signaling information corresponding to the injection levels.

[0206] The enhanced layer MIMO signal for the first antenna / polarization and the enhanced layer MIMO signal for the second antenna / polarization may be power-regulated corresponding to the same injection level or may be power-regulated corresponding to different injection levels.

[0207] At this time, the first preamble corresponding to the first antenna (polarization) and the second preamble corresponding to the second antenna (polarization) may include the same 5-bit injection level field (L1D_plp_ldm_injection_level).

[0208] At this time, the injection level controllers (1131, 1132) and power normalizers (1135, 1136) illustrated in FIG. 11 can all operate based on an injection level corresponding to the same 5-bit injection level field (L1D_plp_ldm_injection_level). That is, the same injection level value can be shared for the first antenna (polarization) and the second antenna (polarization).

[0209] Depending on the embodiment, different injection levels may be used for the first antenna / polarization and the second antenna / polarization. In this case, if the L1-Detail signaling for the first antenna / polarization and the L1-Detail signaling for the second antenna / polarization are the same, a signaling field separate from the aforementioned 5-bit injection level field (L1D_plp_ldm_injection_level) may be required. In this case, an injection level corresponding to L1D_plp_ldm_injection_level may be used for the first antenna (polarization), and an injection level corresponding to another signaling field may be used for the second antenna (polarization).

[0210] The LDM coupling unit (1130) illustrated in FIG. 11 and the LDM coupling unit (330) illustrated in FIG. 3 can output a first polarization signal corresponding to the first polarization and a second polarization signal corresponding to the second polarization.

[0211] The transmission signal generation unit (1150) illustrated in Fig. 11 and the transmission signal generation unit (340) illustrated in Fig. 3 are the scaling factor (K) of the first polarization. m[0]) to generate a first polarization transmission signal corresponding to the first polarization signal, and a scaling factor (K) of the second polarization m [1]) can be used to generate a second polarization transmission signal corresponding to the second polarization signal.

[0212] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization may correspond to the injection level of the hierarchical division multiplexing.

[0213] At this time, the scaling factor (K) of the first polarization m [0]) corresponds to the polarization index 0, and the scaling factor (K) of the second polarization m [1]) may correspond to polarization index 1.

[0214] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization may be applied to values ​​corresponding to complex modulation values ​​that are not set for each polarization for the preamble, and may be applied to values ​​corresponding to complex modulation values ​​that are set for each polarization for at least one subframe.

[0215] At this time, for the first polarization, the power of the preamble symbol corresponding to the preamble may reference the data symbol power of the first subframe that activates the first polarization.

[0216] At this time, for the second polarization, the power of the preamble symbol corresponding to the preamble may refer to the data symbol power of the first subframe that activates the second polarization.

[0217] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization can be applied to power scaling performed in the IFFT (Inverse Fast Fourier Transform) stage.

[0218] At this time, the LDM coupling unit can hierarchically multiplex one of the core layer signal and the enhanced layer MIMO signals and output it as the first polarization signal, and output the other one of the enhanced layer MIMO signals as the second polarization signal.

[0219] At this time, the scaling factor of the first polarization can be maintained the same even if the injection level corresponding to the hierarchical division multiplexing changes.

[0220] At this time, the scaling factor of the second polarization may change as the injection level corresponding to the hierarchical division multiplexing changes.

[0221] At this time, the scaling factor of the second polarization may decrease as the injection level corresponding to the hierarchical division multiplexing increases.

[0222] FIG. 12 is a diagram showing a physical layer frame of a broadcast signal according to an embodiment of the present invention.

[0223] Referring to FIG. 12, it can be seen that the physical layer frame of a broadcast signal according to one embodiment of the present invention has a structure in which a bootstrap, a preamble, and a data subframe are connected in time series.

[0224] In particular, data within the physical layer frame illustrated in FIG. 12 can be transmitted using multiple data subframes.

[0225] A broadcast signal transmitter for MIMO transmission has a MIMO exciter that outputs two polarization transmission signals (a first polarization transmission signal and a second polarization transmission signal), and each polarization transmission signal can be output through a power amplifier. That is, the two polarization transmission signals can be output through two power amplifiers.

[0226] The polarization transmission signals, which are outputs of the MIMO exciter corresponding to each of the two MIMO transmit antennas (polarizations), may correspond to bootstrap and preamble signals of the same configuration, and the output powers of the polarization transmission signals may be different. Furthermore, the transmission powers of the two power amplifiers through which each of the polarization transmission signals passes may also be set differently.

[0227] At this time, setting the transmission power of the second polarization (second antenna) to a small value may be helpful in ensuring successful decoding of the core layer data (legacy service) of the first polarization (first antenna).

[0228] At this time, the data subframes of the first polarization transmission signal and the second polarization transmission signal may be composed of signals of different types. That is, the data transmitted through the first polarization and the data transmitted through the second polarization may be different from each other.

[0229] At this time, the first polarization may correspond to a typical layered division multiplexing (LDM) configuration having both a core layer and an enhanced layer, while the second polarization may have a unique configuration having only an enhanced layer without a core layer.

[0230] To support such a unique structure, appropriate power scaling for each polarization may be required in the IFFT block within the waveform generator.

[0231] FIG. 13 is a diagram illustrating broadcast signal frames transmitted through two MIMO antennas according to one embodiment of the present invention.

[0232] Referring to FIG. 13, it can be seen that the power of the enhanced layer signal (ANT1 SIG.) of the first antenna (TRANSMIT ANTENNA #1, first polarization) and the power of the enhanced layer signal (ANT2 SIG.) of the second antenna (TRANSMIT ANTENNA #2, second polarization) are the same.

[0233] At this time, in the example shown in FIG. 13, the first antenna (TRANSMIT ANTENNA #1, first polarization) and the second antenna (TRANSMIT ANTENNA #2, second polarization) can commonly use the L1D_plp_ldm_injection_level field.

[0234] For convenience of explanation, the bootstrap and preamble are illustrated together in FIG. 13, but as described above, the bootstrap and preamble may be transmitted sequentially.

[0235] As a result, the transmission power of the first polarization transmission signal and the second polarization transmission signal can be set differently.

[0236] At this time, the first polarization transmission signal and the second polarization transmission signal may pass through the first power amplifier and the second power amplifier, respectively. At this time, the first polarization transmission signal and the second polarization transmission signal that have passed through the power amplifiers may be output with different transmission powers through a transmission line physically connected to transmission antenna 1 and a transmission line physically connected to transmission antenna 2, respectively.

[0237] At this time, the ratio between the output power of the first polarization transmission signal and the output power of the second polarization transmission signal can be determined corresponding to the L1D_plp_ldm_injection_level field.

[0238] That is, when setting the transmission power of the first polarization transmission signal and the transmission power of the second polarization transmission signal in the waveform generators, the L1D_plp_ldm_injection_level field can be taken into consideration when setting the transmission power.

[0239] The waveform generators illustrated in FIG. 3 or FIG. 11 may include an IFFT block. In particular, for the IFFT block, the baseband time domain signal after the IFFT may be expressed as in the following mathematical expression 1 for each of the first polarization and the second polarization.

[0240] [Mathematical Formula 1]

[0241]

[0242] That is, the above mathematical expression 1 represents a post-IFFT signal description.

[0243] In the above mathematical expression 1, Ψ l,k (t) can be expressed as in the following mathematical formula 2, and Ψ m,l,k (t) can be expressed as in the following mathematical formula 3. In this case, Ψ l,k (t) and Ψ m,l,k (t) may be the same as the values ​​defined in the existing ATSC 3.0 A / 322 standard.

[0244] [Equation 2]

[0245]

[0246] [Equation 3]

[0247]

[0248] At this time, a can represent a polarization (antenna) index. At this time, a can be set to 0 for the first polarization, and a can be set to 1 for the second polarization.

[0249] At this time, k can represent the carrier number.

[0250] At this time, l can represent an OFDM symbol number starting from 0 for the first preamble symbol of a frame and being reset at the first OFDM symbol of each subframe.

[0251] At this time, m is 0 ≤ m < N SF It can indicate the subframe number.

[0252] At this time, c l,k may be the complex modulation value for carrier k of the preamble symbol number l.

[0253] At this time, c a,m,l,k may be the complex modulation value for carrier k of the OFDM symbol number l in subframe number m associated with polarization a.

[0254] At this time, K m[a] may be a scaling coefficient subject to subframe number m and antenna index a. That is, the scaling coefficient K m [a] may vary depending on the antenna index and may also vary depending on the subframe. In this case, the scaling factor K m [a] can remain the same within one subframe, and thus the injection level can remain the same within one subframe.

[0255] At this time, K m The value of [a] may be related to injection level information as summarized in Table 4 below.

[0256] Antenna-Specific Injection Level of EL below CL [dB]K m[a]Type AType Ba= 0, 1a= 0a= 10.01.00000001.00000000.70710680.51.00000001.00000000.68647611.01.00000001.00000000.66534831.51.00000001.00000000.64381782.01.00000001.00000000.62198322.51.00000001.0000000.59994583.01.00000001.00000000.57780673.51.00000001.00000000.55 566524.01.00000001.00000000.5336174.51.00000001.00000000.51175285.01.00000001.00000000.49015616.01.00000001.00000000.44806257.01.00000001.0000000.40784508.01.00000001.00000000.36987429.01.00000001.00000000.334388710.01.000000001.00000000 .301511411.01.00000001.00000000.271270312.01.00000001.00000000.243620413.01.00000001.00000000.218464414.01.00000001.00000000.195669315.01.00000001.00000000.175081216.01.00000001.0000000.156535517.01.00000001.00000000.139865318.01.00000 001.00000000.124906619.01.00000001.00000000.111502120.01.00000001.00000000.099503721.01.00000001.00000000.088773222.01.00000001.00000000.079183423.01.00000001.0000000.070617924.01.00000001.0000000.062970525.01.00000001.0000000.0561454

[0257] That is, Table 4 shows the scaling factor according to the injection level of the injection layer when LDM and MIMO are used together.

[0258] At this time, Type A in the above Table 4 corresponds to the transmitter structure illustrated in Fig. 11, and Type B corresponds to the transmitter structure illustrated in Figs. 3 and 4.

[0259] At this time, the IFFT output of the above mathematical expression 1 may correspond to a case where all frames use a combination technique of LDM and MIMO. If a subframe corresponding to a combination of LDM and MIMO is time-division multiplexed with a subframe to which LDM and MIMO are not applied together, the IFFT processing may need to be expressed differently.

[0260] At this time, NoC P,l is (l+ 1) th The number of carriers in the preamble symbol (l + 1) th preamble symbol). The first preamble symbol (l=0) always has the minimum NoC, and the subsequent preamble symbols (0 <l<L Fp ) can share the same NoC value that is signaled in L1-Basic.

[0261] At this time, NoC m can represent the number of carriers of subframe m.

[0262] At this time, L SFm can represent the number of data and subframe boundary symbols in subframe m.

[0263] At this time, L Fp can represent the number of OFDM symbols in the preamble.

[0264] At this time, N SF can indicate the number of subframes in a frame.

[0265] At this time, P'preamble,a,l is (l + 1) derived from the input (before scaling by K0[a]) of the IFFT block associated with polarization a. th The frequency domain total power of the (l + 1) preamble symbol th A preamble symbol, derived from the input to the IFFT block (before scaling by K0[a]) associated with polarization a) can be represented. In this case, P'preamble,a,l is P defined in the existing ATSC 3.0 A / 322 standard. preamble,l can share the same value as (l + 1) for polarization a. th The power of the preamble symbol is scaled by K0[a] (K0[a]) 2 It can be adjusted to P'preamble,a,l.

[0266] At this time, P' data,a,mcan represent the frequency domain total power of each data and subframe boundary symbol in subframe m, derived from the input to the IFFT block associated with polarization a. In this case, P' data,a,m is defined in the existing ATSC 3.0 A / 322 standard. data,m can share the same value. With respect to the data and subframe boundary symbols transmitted from polarization a, the power of subframe m is scaled by K0[a] (K m [a]) 2 P' data,a,m can be adjusted to

[0267] At this time, k' can represent the carrier index relative to the center frequency. That is, k' can be k - (NoC - 1) / 2.

[0268] At this time, T sm can represent the total symbol duration of each data and subframe boundary symbol in subframe m. In this case, T Sm = T Um + T Gm It could be.

[0269] At this time, T Umcan represent the useful symbol duration for each data and subframe boundary symbol in subframe m.

[0270] At this time, T Gm may represent the duration of the guard interval for each data and subframe boundary symbol in subframe m including extra samples for each data and subframe boundary symbol.

[0271] At this time, T BS can represent the duration of the bootstrap.

[0272] At this time, T P can represent the total duration of the preamble. In this case, T P = L Fp T Sp It could be.

[0273] At this time, T Sp can represent the total symbol duration of each preamble symbol. At this time, T Sp = T Up + T Gp It could be.

[0274] At this time, T Upcan represent the useful symbol duration for each preamble symbol.

[0275] At this time, T Gp can represent the duration of the guard interval for each preamble symbol.

[0276] At this time, T SFm can represent the total duration of all data and subframe boundary symbols in subframe m.

[0277] At this time, ∑T SFm can represent the summation of the total duration of subframes from 0 to m-1.

[0278] The generation of the baseband time domain signal can be performed serially for each polarization stream. Each polarization stream can transmit different complex modulation values ​​at the same cell position. Therefore, the antenna-specific notation c a,m,l,k This can be used.

[0279] Complex modulation values ​​c obtained from previous function blocks l,k and c a,m,l,k Given this, the IFFT blocks have scalar coefficients K m Power scaling can be performed based on [a].

[0280] Allowed K m Correlation between the values ​​of [a] and the injection level (allowed values ​​of K m[a] and the correspondence to the injection level) are expressed in Table 4 above. In particular, all K except the second polarization (a = 1) of Type B in Table 4 m [a] can be given as 1 (unity).

[0281] At this time, IFFT power normalization is performed for polarization a and subframe m by normalizing the average power of the baseband time domain signal (K m [a]) 2 can be normalized. At this time, for the preamble, the average power is (K0[a]) 2 This power normalization applies an IFFT power normalization factor 1 / √P'preamble,a,l to the preamble and an IFFT power normalization factor 1 / √P' to the data and subframe boundary symbols. data,a,m This can be achieved by applying .

[0282] Frequency domain power parameters P'preamble, a, l and P' data,a,m is K m Carrier signals that are not scaled by [a] (e.g., c l,k and c a,m,l,k ) can be derived from.

[0283] Parameters not explicitly defined here may be used identically to those defined in the existing ATSC 3.0 A / 322 standard.

[0284] Figure 14 is a flowchart illustrating a broadcast signal transmission method according to one embodiment of the present invention.

[0285] Referring to FIG. 14, a broadcast signal transmission device according to an embodiment of the present invention outputs a first polarization signal corresponding to the first polarization and a second polarization signal corresponding to the second polarization (S1410).

[0286] In addition, a broadcast signal transmission device according to an embodiment of the present invention generates a first polarization transmission signal corresponding to the first polarization signal using a scaling factor of the first polarization, and generates a second polarization transmission signal corresponding to the second polarization signal using a scaling factor of the second polarization (S1420).

[0287] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization may correspond to the injection level of the hierarchical division multiplexing.

[0288] At this time, the scaling coefficient of the first polarization may correspond to polarization index 0, and the scaling coefficient of the second polarization may correspond to polarization index 1.

[0289] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization may be applied to values ​​corresponding to complex modulation values ​​that are not set for each polarization for the preamble, and may be applied to values ​​corresponding to complex modulation values ​​that are set for each polarization for at least one subframe.

[0290] At this time, for the first polarization, the power of the preamble symbol corresponding to the preamble may refer to the data symbol power of the first subframe that activates the first polarization, and for the second polarization, the power of the preamble symbol corresponding to the preamble may refer to the data symbol power of the first subframe that activates the second polarization.

[0291] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization can be applied to power scaling performed in the IFFT (Inverse Fast Fourier Transform) stage.

[0292] At this time, the first polarization signal is generated by hierarchically multiplexing a core layer signal and one of the enhanced layer MIMO signals, and the other of the enhanced layer MIMO signals can be output as the second polarization signal.

[0293] At this time, the scaling factor of the first polarization remains the same even if the injection level corresponding to the hierarchical division multiplexing changes, and the scaling factor of the second polarization can change as the injection level corresponding to the hierarchical division multiplexing changes.

[0294] Figure 15 is a flowchart illustrating a broadcast signal receiving method according to one embodiment of the present invention.

[0295] Referring to FIG. 15, a broadcast signal receiving method according to an embodiment of the present invention receives a first polarization transmission signal generated based on a scaling factor of a first polarization and a second polarization transmission signal generated based on a scaling factor of a second polarization (S1510).

[0296] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization may correspond to the injection level of the hierarchical division multiplexing.

[0297] At this time, the scaling coefficient of the first polarization may correspond to polarization index 0, and the scaling coefficient of the second polarization may correspond to polarization index 1.

[0298] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization may be applied to values ​​corresponding to complex modulation values ​​that are not set for each polarization for the preamble, and may be applied to values ​​corresponding to complex modulation values ​​that are set for each polarization for at least one subframe.

[0299] At this time, for the first polarization, the power of the preamble symbol corresponding to the preamble may refer to the data symbol power of the first subframe that activates the first polarization, and for the second polarization, the power of the preamble symbol corresponding to the preamble may refer to the data symbol power of the first subframe that activates the second polarization.

[0300] At this time, the scaling factor of the first polarization and the scaling factor of the second polarization can be applied to power scaling performed in the IFFT (Inverse Fast Fourier Transform) stage.

[0301] At this time, the first polarization signal is generated by hierarchically multiplexing a core layer signal and one of the enhanced layer MIMO signals, and the other of the enhanced layer MIMO signals can be output as the second polarization signal.

[0302] At this time, the scaling factor of the first polarization remains the same even if the injection level corresponding to the hierarchical division multiplexing changes, and the scaling factor of the second polarization can change as the injection level corresponding to the hierarchical division multiplexing changes.

[0303] At this time, the received first polarization transmission signal and second polarization transmission signal can be used by the receiver to decode the bootstrap and preamble signals. The decoded bootstrap and preamble signals can be used to restore injection level information corresponding to layered division multiplexing.

[0304] In addition, a broadcast signal receiving method according to one embodiment of the present invention restores a core layer stream through decoding corresponding to at least one of the first polarization and the second polarization (S1520).

[0305] At this time, when the first polarization transmission signal and the second polarization transmission signal generated through the transmission structure of FIGS. 3 and 4 are received, the core layer stream can be restored through decoding corresponding to the first polarization.

[0306] At this time, when the first polarization transmission signal and the second polarization transmission signal generated through the transmission structure of FIG. 11 are received, the core layer stream can be restored through MIMO decoding corresponding to the first polarization and the second polarization.

[0307] In addition, a broadcast signal receiving method according to an embodiment of the present invention restores an enhanced layer stream through MIMO decoding using first polarization enhanced layer symbols corresponding to the first polarization and second polarization enhanced layer symbols corresponding to the second polarization (S1530).

[0308] Each step illustrated in FIGS. 14 and 15 may be performed in the order illustrated in FIGS. 14 and 15, in the reverse order, or simultaneously.

[0309] Figure 16 is a block diagram showing a computer system configuration according to one embodiment of the present invention.

[0310] The broadcast signal transmitting device, the broadcast signal receiving device and the individual components constituting these devices according to the embodiment can be implemented in a computer system (1600).

[0311] The computer system (1600) may include one or more processors (1610), memory (1630), user interface input devices (1640), user interface output devices (1650), and storage (1660) that communicate with each other via a bus (1620). The computer system (1600) may further include a network interface (1670) connected to a network (1680). The processor (1610) may be a central processing unit or a semiconductor device that executes programs or processing instructions stored in the memory (1630) or storage (1660). The memory (1630) and storage (1660) may be storage media that include at least one of a volatile medium, a nonvolatile medium, a removable medium, a non-removable medium, a communication medium, or an information transmission medium. For example, the memory (1630) may include a ROM (1631) or a RAM (1632).

[0312] At this time, at least one program can be recorded in the memory (1630).

[0313] At this time, the processor (1610) can execute the program. At this time, the program can perform each step illustrated in FIG. 14 or each step illustrated in FIG. 15.

[0314]

[0315] As described above, the broadcast signal transmission device, method, and broadcast signal reception method according to the present invention are not limited to the configurations and methods of the embodiments described above, but the embodiments may be configured by selectively combining all or part of the embodiments so that various modifications can be made.

Claims

1. An LDM coupling unit that outputs a first polarization signal corresponding to the first polarization and a second polarization signal corresponding to the second polarization; and A transmission signal generation unit that generates a first polarization transmission signal corresponding to the first polarization signal using a scaling factor of the first polarization, and generates a second polarization transmission signal corresponding to the second polarization signal using a scaling factor of the second polarization. A broadcast signal transmitting device including:

2. In claim 1, The scaling factor of the first polarization and the scaling factor of the second polarization are A broadcast signal transmission device corresponding to the injection level of hierarchical division multiplexing.

3. In claim 2, A broadcast signal transmitting device, wherein the scaling factor of the first polarization corresponds to polarization index 0, and the scaling factor of the second polarization corresponds to polarization index 1.

4. In claim 3, The scaling factor of the first polarization and the scaling factor of the second polarization are A broadcast signal transmitting device, which is applied to values ​​corresponding to complex modulation values ​​that are not set by polarization for a preamble and which is applied to values ​​corresponding to complex modulation values ​​that are set by polarization for at least one subframe.

5. In claim 4, A broadcast signal transmission device, wherein, for the first polarization, the power of the preamble symbol corresponding to the preamble refers to the power of the data symbol of the first subframe that activates the first polarization.

6. In claim 5, A broadcast signal transmission device, wherein, for the second polarization, the power of the preamble symbol corresponding to the preamble refers to the data symbol power of the first subframe that activates the second polarization.

7. In claim 6, The scaling factor of the first polarization and the scaling factor of the second polarization are A broadcast signal transmission device applied to power scaling performed in the IFFT (Inverse Fast Fourier Transform) stage.

8. In claim 7, The above LDM joint A broadcast signal transmission device that hierarchically multiplexes a core layer signal and one of the enhanced layer MIMO signals and outputs it as the first polarization signal, and outputs the other one of the enhanced layer MIMO signals as the second polarization signal.

9. In claim 8, The scaling factor of the above first polarization is A broadcast signal transmission device that maintains the same level even when the injection level corresponding to the above hierarchical division multiplexing changes.

10. In claim 9, The scaling factor of the above second polarization is A broadcast signal transmission device that changes as the injection level corresponding to the above hierarchical division multiplexing changes.

11. In claim 10, The scaling factor of the above second polarization is A broadcast signal transmission device, wherein the injection level corresponding to the above hierarchical division multiplexing decreases as it increases.

12. A step of outputting a first polarization signal corresponding to the first polarization and a second polarization signal corresponding to the second polarization; and A step of generating a first polarization transmission signal corresponding to the first polarization signal using a scaling factor of the first polarization, and generating a second polarization transmission signal corresponding to the second polarization signal using a scaling factor of the second polarization. A method for transmitting a broadcast signal, comprising:

13. In claim 12, The scaling factor of the first polarization and the scaling factor of the second polarization are A method for transmitting a broadcast signal corresponding to an injection level of hierarchical division multiplexing.

14. In claim 13, A method for transmitting a broadcast signal, wherein the scaling factor of the first polarization corresponds to polarization index 0, and the scaling factor of the second polarization corresponds to polarization index 1.

15. In claim 14, The scaling factor of the first polarization and the scaling factor of the second polarization are A method for transmitting a broadcast signal, wherein the method applies a value corresponding to complex modulation values ​​that are not set for each polarization for a preamble and applies a value corresponding to complex modulation values ​​that are set for each polarization for at least one subframe.

16. In claim 15, For the first polarization, the power of the preamble symbol corresponding to the preamble refers to the data symbol power of the first subframe that activates the first polarization, A broadcast signal transmission method, wherein, for the second polarization, the power of the preamble symbol corresponding to the preamble refers to the data symbol power of the first subframe that activates the second polarization.

17. In claim 16, The scaling factor of the first polarization and the scaling factor of the second polarization are A method for transmitting a broadcast signal, applied to power scaling performed in the IFFT (Inverse Fast Fourier Transform) stage.

18. In claim 17, The above first polarization signal is generated by hierarchically multiplexing a core layer signal and one of the enhanced layer MIMO signals, A broadcast signal transmission method, wherein another one of the above enhanced layer MIMO signals is output as the second polarization signal.

19. In claim 18, The scaling factor of the above first polarization is Even if the injection level corresponding to the above hierarchical division multiplexing changes, it remains the same, The scaling factor of the above second polarization is A method for transmitting a broadcast signal, wherein the injection level corresponding to the above hierarchical division multiplexing changes as the level changes.

20. A step of receiving a first polarization transmission signal generated based on a scaling factor of the first polarization and a second polarization transmission signal generated based on a scaling factor of the second polarization; A step of restoring a core layer stream through decoding corresponding to at least one of the first polarization and the second polarization; and A step of restoring an enhanced layer stream through MIMO decoding using first polarization enhanced layer symbols corresponding to the first polarization and second polarization enhanced layer symbols corresponding to the second polarization. A method for receiving a broadcast signal, comprising:

Citation Information

Patent Citations

  • A method and apparatus for estimating frequency offset in an optical transmission channel

    CN107872411B

  • Systems and methods for analog electronic polarization control for coherent optical receivers

    US20200328818A1

  • Beamforming in cellular systems using the same feedback information for different physical channels

    US20200403673A1

  • Spectral sharing wireless systems

    US20220311489A1

  • Broadcast signal transmission / reception method using multiple antennas and layered-division multiplexing and apparatus for the same

    US20230146118A1