Structured light phase encoding method based on dual-frequency sine waves
A decoding method and sine wave technology, applied in the direction of using optical devices, measuring devices, instruments, etc., can solve problems such as phase jump, phase main value measurement error, and complex phase unwrapping algorithm, so as to increase flexibility and expand the scope of application Effect
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specific Embodiment 1
[0073] The structured light phase decoding method based on dual-frequency sine waves in this embodiment is used to verify the effectiveness under the same conditions as the parameters of the "Phase Unwrapping Engineering Method".
[0074] The structured light phase decoding method based on dual-frequency sine waves in this embodiment includes the following steps:
[0075] Step a, projection waveform function is the first sine wave of y1=k1*sin(2πx / a1)+b1 and the waveform function is the second sine wave of y2=k2*sin(2πx / a2)+b2 respectively;
[0076] in:
[0077] k1=1, a1=9, b1=0;
[0078] k2=1, a2=10, b2=0;
[0079] x is the spatial position;
[0080] and:
[0081] The starting points of the two sine waves are the same;
[0082] a1 / (a2-a1)=9;
[0083] The graphics drawn according to the parameters of step a are as follows figure 1 shown;
[0084] Step b, according to the given spatial position 38.75, find the phase principal value phi1 of the first sine wave correspond...
specific Embodiment 2
[0102] The dual-frequency sine wave-based structured light phase decoding method of this embodiment is used to verify the validity when a1 and a2 are not all integers.
[0103] The structured light phase decoding method based on dual-frequency sine waves in this embodiment includes the following steps:
[0104] Step a, projection waveform function is the first sine wave of y1=k1*sin(2πx / a1)+b1 and the waveform function is the second sine wave of y2=k2*sin(2πx / a2)+b2 respectively;
[0105] in:
[0106] k1=1, a1=9, b1=0;
[0107] k2=1, a2=10.5, b2=0;
[0108] x is the spatial position;
[0109] and:
[0110] The starting points of the two sine waves are the same;
[0111] a1 / (a2-a1)=6;
[0112] The graphics drawn according to the parameters of step a are as follows figure 2 shown;
[0113] Step b, according to the given spatial position 38.75, find the phase principal value phi1 of the first sine wave corresponding to the spatial position 38.75 and the phase principal v...
specific Embodiment 3
[0131] The dual-frequency sine wave-based structured light phase decoding method of this embodiment is used to verify the validity when a1 and a2 are not integers.
[0132] Step a, projection waveform function is the first sine wave of y1=k1*sin(2πx / a1)+b1 and the waveform function is the second sine wave of y2=k2*sin(2πx / a2)+b2 respectively;
[0133] in:
[0134] k1=1, a1=8.8, b1=0;
[0135] k2=1, a2=9.9, b2=0;
[0136] x is the spatial position;
[0137] and:
[0138] The starting points of the two sine waves are the same;
[0139] a1 / (a2-a1)=8;
[0140] The graphics drawn according to the parameters of step a are as follows image 3 shown;
[0141] Step b, according to the given spatial position 38.75, find the phase principal value phi1 of the first sine wave corresponding to the spatial position 38.75 and the phase principal value phi2 of the second sine wave;
[0142] in:
[0143] phi1=arcsin(sin(2π×38.75 / 8.8))=0.6069;
[0144] Since tan(2π×38.75 / 8.8)0, therefo...
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