{trunk]update mct functions with opj_ prefix and new opj type
add some comments
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@ -38,40 +38,40 @@
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/* <summary> */
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/* This table contains the norms of the basis function of the reversible MCT. */
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/* </summary> */
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static const double mct_norms[3] = { 1.732, .8292, .8292 };
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static const OPJ_FLOAT64 opj_mct_norms[3] = { 1.732, .8292, .8292 };
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/* <summary> */
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/* This table contains the norms of the basis function of the irreversible MCT. */
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/* </summary> */
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static const double mct_norms_real[3] = { 1.732, 1.805, 1.573 };
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static const OPJ_FLOAT64 opj_mct_norms_real[3] = { 1.732, 1.805, 1.573 };
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const OPJ_FLOAT64 * get_mct_norms ()
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const OPJ_FLOAT64 * opj_mct_get_mct_norms ()
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{
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return mct_norms;
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return opj_mct_norms;
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}
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const OPJ_FLOAT64 * get_mct_norms_real ()
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const OPJ_FLOAT64 * opj_mct_get_mct_norms_real ()
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{
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return mct_norms_real;
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return opj_mct_norms_real;
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}
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/* <summary> */
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/* Foward reversible MCT. */
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/* </summary> */
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void mct_encode(
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int* restrict c0,
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int* restrict c1,
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int* restrict c2,
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int n)
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void opj_mct_encode(
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OPJ_INT32* restrict c0,
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OPJ_INT32* restrict c1,
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OPJ_INT32* restrict c2,
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OPJ_UINT32 n)
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{
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int i;
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OPJ_UINT32 i;
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for(i = 0; i < n; ++i) {
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int r = c0[i];
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int g = c1[i];
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int b = c2[i];
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int y = (r + (g * 2) + b) >> 2;
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int u = b - g;
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int v = r - g;
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OPJ_INT32 r = c0[i];
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OPJ_INT32 g = c1[i];
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OPJ_INT32 b = c2[i];
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OPJ_INT32 y = (r + (g * 2) + b) >> 2;
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OPJ_INT32 u = b - g;
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OPJ_INT32 v = r - g;
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c0[i] = y;
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c1[i] = u;
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c2[i] = v;
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@ -81,20 +81,20 @@ void mct_encode(
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/* <summary> */
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/* Inverse reversible MCT. */
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/* </summary> */
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void mct_decode(
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int* restrict c0,
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int* restrict c1,
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int* restrict c2,
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int n)
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void opj_mct_decode(
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OPJ_INT32* restrict c0,
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OPJ_INT32* restrict c1,
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OPJ_INT32* restrict c2,
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OPJ_UINT32 n)
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{
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int i;
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OPJ_UINT32 i;
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for (i = 0; i < n; ++i) {
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int y = c0[i];
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int u = c1[i];
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int v = c2[i];
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int g = y - ((u + v) >> 2);
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int r = v + g;
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int b = u + g;
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OPJ_INT32 y = c0[i];
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OPJ_INT32 u = c1[i];
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OPJ_INT32 v = c2[i];
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OPJ_INT32 g = y - ((u + v) >> 2);
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OPJ_INT32 r = v + g;
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OPJ_INT32 b = u + g;
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c0[i] = r;
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c1[i] = g;
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c2[i] = b;
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@ -104,27 +104,27 @@ void mct_decode(
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/* <summary> */
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/* Get norm of basis function of reversible MCT. */
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/* </summary> */
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double mct_getnorm(int compno) {
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return mct_norms[compno];
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OPJ_FLOAT64 opj_mct_getnorm(OPJ_UINT32 compno) {
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return opj_mct_norms[compno];
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}
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/* <summary> */
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/* Foward irreversible MCT. */
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/* </summary> */
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void mct_encode_real(
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int* restrict c0,
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int* restrict c1,
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int* restrict c2,
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int n)
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void opj_mct_encode_real(
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OPJ_INT32* restrict c0,
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OPJ_INT32* restrict c1,
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OPJ_INT32* restrict c2,
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OPJ_UINT32 n)
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{
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int i;
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OPJ_UINT32 i;
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for(i = 0; i < n; ++i) {
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int r = c0[i];
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int g = c1[i];
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int b = c2[i];
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int y = fix_mul(r, 2449) + fix_mul(g, 4809) + fix_mul(b, 934);
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int u = -fix_mul(r, 1382) - fix_mul(g, 2714) + fix_mul(b, 4096);
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int v = fix_mul(r, 4096) - fix_mul(g, 3430) - fix_mul(b, 666);
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OPJ_INT32 r = c0[i];
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OPJ_INT32 g = c1[i];
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OPJ_INT32 b = c2[i];
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OPJ_INT32 y = fix_mul(r, 2449) + fix_mul(g, 4809) + fix_mul(b, 934);
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OPJ_INT32 u = -fix_mul(r, 1382) - fix_mul(g, 2714) + fix_mul(b, 4096);
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OPJ_INT32 v = fix_mul(r, 4096) - fix_mul(g, 3430) - fix_mul(b, 666);
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c0[i] = y;
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c1[i] = u;
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c2[i] = v;
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@ -134,13 +134,13 @@ void mct_encode_real(
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/* <summary> */
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/* Inverse irreversible MCT. */
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/* </summary> */
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void mct_decode_real(
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float* restrict c0,
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float* restrict c1,
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float* restrict c2,
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int n)
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void opj_mct_decode_real(
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OPJ_FLOAT32* restrict c0,
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OPJ_FLOAT32* restrict c1,
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OPJ_FLOAT32* restrict c2,
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OPJ_UINT32 n)
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{
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int i;
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OPJ_UINT32 i;
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#ifdef __SSE__
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__m128 vrv, vgu, vgv, vbu;
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vrv = _mm_set1_ps(1.402f);
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@ -180,12 +180,12 @@ void mct_decode_real(
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n &= 7;
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#endif
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for(i = 0; i < n; ++i) {
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float y = c0[i];
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float u = c1[i];
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float v = c2[i];
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float r = y + (v * 1.402f);
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float g = y - (u * 0.34413f) - (v * (0.71414f));
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float b = y + (u * 1.772f);
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OPJ_FLOAT32 y = c0[i];
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OPJ_FLOAT32 u = c1[i];
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OPJ_FLOAT32 v = c2[i];
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OPJ_FLOAT32 r = y + (v * 1.402f);
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OPJ_FLOAT32 g = y - (u * 0.34413f) - (v * (0.71414f));
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OPJ_FLOAT32 b = y + (u * 1.772f);
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c0[i] = r;
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c1[i] = g;
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c2[i] = b;
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@ -195,21 +195,16 @@ void mct_decode_real(
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/* <summary> */
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/* Get norm of basis function of irreversible MCT. */
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/* </summary> */
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double mct_getnorm_real(int compno) {
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return mct_norms_real[compno];
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OPJ_FLOAT64 opj_mct_getnorm_real(OPJ_UINT32 compno) {
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return opj_mct_norms_real[compno];
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}
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opj_bool mct_encode_custom(
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/* MCT data */
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opj_bool opj_mct_encode_custom(
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OPJ_BYTE * pCodingdata,
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/* size of components */
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OPJ_UINT32 n,
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/* components */
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OPJ_BYTE ** pData,
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/* nb of components (i.e. size of pData) */
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OPJ_UINT32 pNbComp,
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/* tells if the data is signed */
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OPJ_UINT32 isSigned)
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{
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OPJ_FLOAT32 * lMct = (OPJ_FLOAT32 *) pCodingdata;
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@ -256,16 +251,11 @@ opj_bool mct_encode_custom(
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return OPJ_TRUE;
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}
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opj_bool mct_decode_custom(
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/* MCT data */
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opj_bool opj_mct_decode_custom(
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OPJ_BYTE * pDecodingData,
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/* size of components */
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OPJ_UINT32 n,
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/* components */
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OPJ_BYTE ** pData,
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/* nb of components (i.e. size of pData) */
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OPJ_UINT32 pNbComp,
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/* tells if the data is signed */
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OPJ_UINT32 isSigned)
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{
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OPJ_FLOAT32 * lMct;
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@ -278,29 +268,19 @@ opj_bool mct_decode_custom(
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OPJ_FLOAT32 ** lData = (OPJ_FLOAT32 **) pData;
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lCurrentData = (OPJ_FLOAT32 *) opj_malloc (2 * pNbComp * sizeof(OPJ_FLOAT32));
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if
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(! lCurrentData)
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{
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if (! lCurrentData) {
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return OPJ_FALSE;
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}
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lCurrentResult = lCurrentData + pNbComp;
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for
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(i = 0; i < n; ++i)
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{
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for (i = 0; i < n; ++i) {
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lMct = (OPJ_FLOAT32 *) pDecodingData;
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for
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(j=0;j<pNbComp;++j)
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{
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for (j=0;j<pNbComp;++j) {
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lCurrentData[j] = (OPJ_FLOAT32) (*(lData[j]));
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}
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for
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(j=0;j<pNbComp;++j)
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{
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for (j=0;j<pNbComp;++j) {
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lCurrentResult[j] = 0;
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for
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(k=0;k<pNbComp;++k)
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{
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for (k=0;k<pNbComp;++k) {
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lCurrentResult[j] += *(lMct++) * lCurrentData[k];
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}
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*(lData[j]++) = (OPJ_FLOAT32) (lCurrentResult[j]);
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@ -52,7 +52,7 @@ Apply a reversible multi-component transform to an image
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@param c2 Samples blue component
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@param n Number of samples for each component
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*/
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void mct_encode(int *c0, int *c1, int *c2, int n);
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void opj_mct_encode(OPJ_INT32 *c0, OPJ_INT32 *c1, OPJ_INT32 *c2, OPJ_UINT32 n);
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/**
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Apply a reversible multi-component inverse transform to an image
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@param c0 Samples for luminance component
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@ -60,13 +60,13 @@ Apply a reversible multi-component inverse transform to an image
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@param c2 Samples for blue chrominance component
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@param n Number of samples for each component
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*/
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void mct_decode(int *c0, int *c1, int *c2, int n);
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void opj_mct_decode(OPJ_INT32 *c0, OPJ_INT32 *c1, OPJ_INT32 *c2, OPJ_UINT32 n);
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/**
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Get norm of the basis function used for the reversible multi-component transform
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@param compno Number of the component (0->Y, 1->U, 2->V)
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@return
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*/
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double mct_getnorm(int compno);
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OPJ_FLOAT64 opj_mct_getnorm(OPJ_UINT32 compno);
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/**
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Apply an irreversible multi-component transform to an image
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@ -75,7 +75,7 @@ Apply an irreversible multi-component transform to an image
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@param c2 Samples blue component
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@param n Number of samples for each component
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*/
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void mct_encode_real(int *c0, int *c1, int *c2, int n);
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void opj_mct_encode_real(OPJ_INT32 *c0, OPJ_INT32 *c1, OPJ_INT32 *c2, OPJ_UINT32 n);
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/**
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Apply an irreversible multi-component inverse transform to an image
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@param c0 Samples for luminance component
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@ -83,43 +83,62 @@ Apply an irreversible multi-component inverse transform to an image
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@param c2 Samples for blue chrominance component
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@param n Number of samples for each component
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*/
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void mct_decode_real(float* c0, float* c1, float* c2, int n);
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void opj_mct_decode_real(OPJ_FLOAT32* c0, OPJ_FLOAT32* c1, OPJ_FLOAT32* c2, OPJ_UINT32 n);
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/**
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Get norm of the basis function used for the irreversible multi-component transform
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@param compno Number of the component (0->Y, 1->U, 2->V)
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@return
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*/
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double mct_getnorm_real(int compno);
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OPJ_FLOAT64 opj_mct_getnorm_real(OPJ_UINT32 compno);
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opj_bool mct_encode_custom(
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/* MCT data */
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/**
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FIXME DOC
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@param p_coding_data MCT data
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@param n size of components
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@param p_data components
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@param p_nb_comp nb of components (i.e. size of p_data)
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@param is_signed tells if the data is signed
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@return OPJ_FALSE if function encounter a problem, OPJ_TRUE otherwise
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*/
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opj_bool opj_mct_encode_custom(
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OPJ_BYTE * p_coding_data,
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/* size of components */
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OPJ_UINT32 n,
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/* components */
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OPJ_BYTE ** p_data,
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/* nb of components (i.e. size of p_data) */
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OPJ_UINT32 p_nb_comp,
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/* tells if the data is signed */
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OPJ_UINT32 is_signed);
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opj_bool mct_decode_custom(
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/* MCT data */
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/**
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FIXME DOC
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@param pDecodingData MCT data
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@param n size of components
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@param pDataa components
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@param pNbComp nb of components (i.e. size of p_data)
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@param isSigneda tells if the data is signed
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@return OPJ_FALSE if function encounter a problem, OPJ_TRUE otherwise
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*/
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opj_bool opj_mct_decode_custom(
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OPJ_BYTE * pDecodingData,
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/* size of components */
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OPJ_UINT32 n,
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/* components */
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OPJ_BYTE ** pData,
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/* nb of components (i.e. size of pData) */
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OPJ_UINT32 pNbComp,
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/* tells if the data is signed */
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OPJ_UINT32 isSigned);
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void opj_calculate_norms(OPJ_FLOAT64 * pNorms,OPJ_UINT32 p_nb_comps,OPJ_FLOAT32 * pMatrix);
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const OPJ_FLOAT64 * get_mct_norms ();
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const OPJ_FLOAT64 * get_mct_norms_real ();
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/**
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FIXME DOC
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@param pNorms MCT data
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@param p_nb_comps size of components
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@param pMatrix components
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@return
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*/
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void opj_calculate_norms( OPJ_FLOAT64 * pNorms,
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OPJ_UINT32 p_nb_comps,
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OPJ_FLOAT32 * pMatrix);
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/**
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FIXME DOC
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*/
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const OPJ_FLOAT64 * opj_mct_get_mct_norms ();
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/**
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FIXME DOC
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*/
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const OPJ_FLOAT64 * opj_mct_get_mct_norms_real ();
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/* ----------------------------------------------------------------------- */
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/*@}*/
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@ -747,10 +747,10 @@ static double t1_getwmsedec(
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{
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double w1, w2, wmsedec;
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if (qmfbid == 1) {
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w1 = (mct && numcomps==3) ? mct_getnorm(compno) : 1.0;
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w1 = (mct && numcomps==3) ? opj_mct_getnorm(compno) : 1.0;
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w2 = dwt_getnorm(level, orient);
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} else { /* if (qmfbid == 0) */
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w1 = (mct && numcomps==3) ? mct_getnorm_real(compno) : 1.0;
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w1 = (mct && numcomps==3) ? opj_mct_getnorm_real(compno) : 1.0;
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w2 = dwt_getnorm_real(level, orient);
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}
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wmsedec = w1 * w2 * stepsize * (1 << bpno);
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@ -1586,7 +1586,7 @@ opj_bool opj_tcd_mct_decode ( opj_tcd_v2_t *p_tcd )
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++l_tile_comp;
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}
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if (! mct_decode_custom(/* MCT data */
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if (! opj_mct_decode_custom(/* MCT data */
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(OPJ_BYTE*) l_tcp->m_mct_decoding_matrix,
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/* size of components */
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l_samples,
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@ -1604,13 +1604,13 @@ opj_bool opj_tcd_mct_decode ( opj_tcd_v2_t *p_tcd )
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}
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else {
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if (l_tcp->tccps->qmfbid == 1) {
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mct_decode( l_tile->comps[0].data,
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opj_mct_decode( l_tile->comps[0].data,
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l_tile->comps[1].data,
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l_tile->comps[2].data,
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l_samples);
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}
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else {
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mct_decode_real( (float*)l_tile->comps[0].data,
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opj_mct_decode_real( (float*)l_tile->comps[0].data,
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(float*)l_tile->comps[1].data,
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(float*)l_tile->comps[2].data,
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l_samples);
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@ -1865,7 +1865,7 @@ opj_bool opj_tcd_mct_encode ( opj_tcd_v2_t *p_tcd )
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++l_tile_comp;
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}
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if (! mct_encode_custom(/* MCT data */
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if (! opj_mct_encode_custom(/* MCT data */
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(OPJ_BYTE*) p_tcd->tcp->m_mct_coding_matrix,
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/* size of components */
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samples,
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@ -1883,10 +1883,10 @@ opj_bool opj_tcd_mct_encode ( opj_tcd_v2_t *p_tcd )
|
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opj_free(l_data);
|
||||
}
|
||||
else if (l_tcp->tccps->qmfbid == 0) {
|
||||
mct_encode_real(l_tile->comps[0].data, l_tile->comps[1].data, l_tile->comps[2].data, samples);
|
||||
opj_mct_encode_real(l_tile->comps[0].data, l_tile->comps[1].data, l_tile->comps[2].data, samples);
|
||||
}
|
||||
else {
|
||||
mct_encode(l_tile->comps[0].data, l_tile->comps[1].data, l_tile->comps[2].data, samples);
|
||||
opj_mct_encode(l_tile->comps[0].data, l_tile->comps[1].data, l_tile->comps[2].data, samples);
|
||||
}
|
||||
|
||||
return OPJ_TRUE;
|
||||
|
@ -1932,10 +1932,10 @@ opj_bool opj_tcd_t1_encode ( opj_tcd_v2_t *p_tcd )
|
|||
if (l_tcp->mct == 1) {
|
||||
/* irreversible encoding */
|
||||
if (l_tcp->tccps->qmfbid == 0) {
|
||||
l_mct_norms = get_mct_norms_real();
|
||||
l_mct_norms = opj_mct_get_mct_norms_real();
|
||||
}
|
||||
else {
|
||||
l_mct_norms = get_mct_norms();
|
||||
l_mct_norms = opj_mct_get_mct_norms();
|
||||
}
|
||||
}
|
||||
else {
|
||||
|
|
Loading…
Reference in New Issue