mirror of https://gitee.com/openkylin/linux.git
drm/i915: Extract ilk_csc_convert_ctm()
Start splitting low level nuts and bolts stuff from ilk_load_csc_matrix(). The goal is to leave only the clear high level logic in place. Signed-off-by: Ville Syrjälä <ville.syrjala@linux.intel.com> Link: https://patchwork.freedesktop.org/patch/msgid/20190218193137.22914-6-ville.syrjala@linux.intel.com Reviewed-by: Uma Shankar <uma.shankar@intel.com>
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@ -188,6 +188,58 @@ static bool ilk_csc_limited_range(const struct intel_crtc_state *crtc_state)
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IS_GEN_RANGE(dev_priv, 9, 10));
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}
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static void ilk_csc_convert_ctm(const struct intel_crtc_state *crtc_state,
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u16 coeffs[9])
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{
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const struct drm_color_ctm *ctm = crtc_state->base.ctm->data;
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const u64 *input;
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u64 temp[9];
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int i;
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if (ilk_csc_limited_range(crtc_state))
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input = ctm_mult_by_limited(temp, ctm->matrix);
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else
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input = ctm->matrix;
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/*
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* Convert fixed point S31.32 input to format supported by the
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* hardware.
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*/
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for (i = 0; i < 9; i++) {
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u64 abs_coeff = ((1ULL << 63) - 1) & input[i];
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/*
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* Clamp input value to min/max supported by
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* hardware.
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*/
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abs_coeff = clamp_val(abs_coeff, 0, CTM_COEFF_4_0 - 1);
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coeffs[i] = 0;
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/* sign bit */
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if (CTM_COEFF_NEGATIVE(input[i]))
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coeffs[i] |= 1 << 15;
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if (abs_coeff < CTM_COEFF_0_125)
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coeffs[i] |= (3 << 12) |
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ILK_CSC_COEFF_FP(abs_coeff, 12);
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else if (abs_coeff < CTM_COEFF_0_25)
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coeffs[i] |= (2 << 12) |
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ILK_CSC_COEFF_FP(abs_coeff, 11);
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else if (abs_coeff < CTM_COEFF_0_5)
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coeffs[i] |= (1 << 12) |
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ILK_CSC_COEFF_FP(abs_coeff, 10);
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else if (abs_coeff < CTM_COEFF_1_0)
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coeffs[i] |= ILK_CSC_COEFF_FP(abs_coeff, 9);
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else if (abs_coeff < CTM_COEFF_2_0)
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coeffs[i] |= (7 << 12) |
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ILK_CSC_COEFF_FP(abs_coeff, 8);
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else
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coeffs[i] |= (6 << 12) |
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ILK_CSC_COEFF_FP(abs_coeff, 7);
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}
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}
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static void ilk_load_csc_matrix(const struct intel_crtc_state *crtc_state)
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{
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struct intel_crtc *crtc = to_intel_crtc(crtc_state->base.crtc);
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@ -218,50 +270,7 @@ static void ilk_load_csc_matrix(const struct intel_crtc_state *crtc_state)
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}
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if (crtc_state->base.ctm) {
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struct drm_color_ctm *ctm = crtc_state->base.ctm->data;
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const u64 *input;
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u64 temp[9];
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if (limited_color_range)
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input = ctm_mult_by_limited(temp, ctm->matrix);
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else
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input = ctm->matrix;
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/*
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* Convert fixed point S31.32 input to format supported by the
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* hardware.
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*/
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for (i = 0; i < ARRAY_SIZE(coeffs); i++) {
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u64 abs_coeff = ((1ULL << 63) - 1) & input[i];
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/*
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* Clamp input value to min/max supported by
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* hardware.
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*/
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abs_coeff = clamp_val(abs_coeff, 0, CTM_COEFF_4_0 - 1);
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/* sign bit */
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if (CTM_COEFF_NEGATIVE(input[i]))
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coeffs[i] |= 1 << 15;
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if (abs_coeff < CTM_COEFF_0_125)
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coeffs[i] |= (3 << 12) |
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ILK_CSC_COEFF_FP(abs_coeff, 12);
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else if (abs_coeff < CTM_COEFF_0_25)
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coeffs[i] |= (2 << 12) |
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ILK_CSC_COEFF_FP(abs_coeff, 11);
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else if (abs_coeff < CTM_COEFF_0_5)
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coeffs[i] |= (1 << 12) |
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ILK_CSC_COEFF_FP(abs_coeff, 10);
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else if (abs_coeff < CTM_COEFF_1_0)
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coeffs[i] |= ILK_CSC_COEFF_FP(abs_coeff, 9);
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else if (abs_coeff < CTM_COEFF_2_0)
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coeffs[i] |= (7 << 12) |
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ILK_CSC_COEFF_FP(abs_coeff, 8);
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else
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coeffs[i] |= (6 << 12) |
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ILK_CSC_COEFF_FP(abs_coeff, 7);
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}
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ilk_csc_convert_ctm(crtc_state, coeffs);
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} else {
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/*
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* Load an identity matrix if no coefficients are provided.
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