Different transmission-line delays trigger distributed current injection to generate tera-sample waveforms with higher frequency reach and time resolution.
Analog nonlinear filtering before ADC suppresses impulsive non-Gaussian noise in narrowband pulse-train communication while preserving real-time processing.
Separate analog and digital gain control lets a single-LO receiver protect strong carriers from saturation while preserving SQNR for weak ones.
An intermediate-voltage calibration scheme adjusts receiver reference voltage codes to offset process errors and widen data comparison margins.
Pre-ADC nonlinear analog filtering removes impulsive non-Gaussian noise in pulse-train signaling while preserving bandwidth and signal integrity.
A shared crystal oscillator with frequency conversion keeps module clock drift aligned, reducing harmonic EMI and mobile terminal malfunctions.
Intermittently nonlinear analog filters suppress non-Gaussian noise before ADC, preserving bandwidth and reducing digital processing load.
An inverted compensation line cancels bus signal radiation, cutting EMI without costly filters or full differential wiring.
Clock conversion circuits keep module frequencies and harmonics separated under temperature drift, reducing EMI in touch, camera, and unlock functions.
Round-to-even processing of I and Q baseband signals cancels biased rounding errors and improves time-average amplitude accuracy.
Summing short GNSS correlators over longer intervals helps filter Gaussian, pulsed, and cross-correlation interference for better decoding and tracking.
Dual-gain receiver paths estimate and remove linear and nonlinear packet interference, enabling accurate decoding from collided wireless signals.
Switched-capacitor N-path filtering creates a 180° phase-shifted analog signal, cutting converter area and noise versus transformers.
Guided electromagnetic waves travel along a cable's dielectric surface to boost bandwidth over distance without an electrical return path.
Mixed mitigated and unmitigated correlation paths improve Link 16 preamble detection under interference without adding heavy FPGA overhead.
Adaptive α and β eye-level control uses waveform feedback to offset PAM distortion and non-linearity in high-speed links.
A baseband-derived compensation signal cancels transmit harmonics leaking into the receive path, preserving sensitivity in carrier aggregation.
Buffered differential signaling and sleep-wake validation improve common-mode transient immunity while cutting idle power across the isolation barrier.
By splitting signals into high- and low-frequency paths, this coupler improves isolation bandwidth, signal-to-noise ratio, and delay tolerance.
α and β eye-level tuning with waveform feedback compensates PAM distortion and non-linearity while preserving signal quality at high data rates.
Multiple threshold-crossing peaks are grouped into one cancellation pulse, cutting peak amplitude with less distortion and noise.
Feedback on slew rate and bit time lets a bus transceiver adapt to bus variation, cutting EMI and timing errors under RF disturbance.
Splitting broadband signals into low- and high-frequency isolated paths improves bandwidth, signal-to-noise ratio, and delay compensation.
A single-amplifier biquad filter maintains flat gain and constant group delay in RF transmitters while cutting phase distortion, power use, and area.
A compensation current tied to the clock signal offsets CMOS channel modulation, stabilizing differential output and reducing transmission noise.
Quadrature IF mixing with gain adjustment compensates gain and phase imbalance, improving image rejection and reducing carrier interference.