@@ -482,7 +482,8 @@ __STATIC_INLINE__ void ggml_merge_tensor_2d(struct ggml_tensor* input,
482482 struct ggml_tensor * output,
483483 int x,
484484 int y,
485- int overlap) {
485+ int overlap_x,
486+ int overlap_y) {
486487 int64_t width = input->ne [0 ];
487488 int64_t height = input->ne [1 ];
488489 int64_t channels = input->ne [2 ];
@@ -495,13 +496,13 @@ __STATIC_INLINE__ void ggml_merge_tensor_2d(struct ggml_tensor* input,
495496 for (int ix = 0 ; ix < width; ix++) {
496497 for (int k = 0 ; k < channels; k++) {
497498 float new_value = ggml_tensor_get_f32 (input, ix, iy, k);
498- if (overlap > 0 ) { // blend colors in overlapped area
499+ if (overlap_x > 0 && overlap_y > 0 ) { // blend colors in overlapped area
499500 float old_value = ggml_tensor_get_f32 (output, x + ix, y + iy, k);
500501
501- const float x_f_0 = (x > 0 ) ? ix / float (overlap ) : 1 ;
502- const float x_f_1 = (x < (img_width - width)) ? (width - ix) / float (overlap ) : 1 ;
503- const float y_f_0 = (y > 0 ) ? iy / float (overlap ) : 1 ;
504- const float y_f_1 = (y < (img_height - height)) ? (height - iy) / float (overlap ) : 1 ;
502+ const float x_f_0 = (overlap_x > 0 && x > 0 ) ? ix / float (overlap_x ) : 1 ;
503+ const float x_f_1 = (overlap_x > 0 && x < (img_width - width)) ? (width - ix) / float (overlap_x ) : 1 ;
504+ const float y_f_0 = (overlap_y > 0 && y > 0 ) ? iy / float (overlap_y ) : 1 ;
505+ const float y_f_1 = (overlap_y > 0 && y < (img_height - height)) ? (height - iy) / float (overlap_y ) : 1 ;
505506
506507 const float x_f = std::min (std::min (x_f_0, x_f_1), 1 .f );
507508 const float y_f = std::min (std::min (y_f_0, y_f_1), 1 .f );
@@ -750,11 +751,21 @@ __STATIC_INLINE__ void sd_tiling(ggml_tensor* input, ggml_tensor* output, const
750751 input_tile_size = tile_size * scale;
751752 output_tile_size = tile_size;
752753 }
754+ int num_tiles_x = (float )(input_width - input_tile_size * tile_overlap_factor) / (float )(input_tile_size * (1 - tile_overlap_factor));
755+ float tile_overlap_factor_x = (float )(input_tile_size * num_tiles_x - input_width) / (float )(input_tile_size * (num_tiles_x - 1 ));
756+
757+ int num_tiles_y = (float )(input_height - input_tile_size * tile_overlap_factor) / (float )(input_tile_size * (1 - tile_overlap_factor));
758+ float tile_overlap_factor_y = (float )(input_tile_size * num_tiles_y - input_height) / (float )(input_tile_size * (num_tiles_y - 1 ));
759+
760+ LOG_DEBUG (" optimal overlap : %f, %f (targeting %f)" , tile_overlap_factor_x, tile_overlap_factor_y, tile_overlap_factor);
753761
754762 GGML_ASSERT (input_width % 2 == 0 && input_height % 2 == 0 && output_width % 2 == 0 && output_height % 2 == 0 ); // should be multiple of 2
755763
756- int tile_overlap = (int32_t )(input_tile_size * tile_overlap_factor);
757- int non_tile_overlap = input_tile_size - tile_overlap;
764+ int tile_overlap_x = (int32_t )(input_tile_size * tile_overlap_factor_x);
765+ int non_tile_overlap_x = input_tile_size - tile_overlap_x;
766+
767+ int tile_overlap_y = (int32_t )(input_tile_size * tile_overlap_factor_y);
768+ int non_tile_overlap_y = input_tile_size - tile_overlap_y;
758769
759770 struct ggml_init_params params = {};
760771 params.mem_size += input_tile_size * input_tile_size * input->ne [2 ] * sizeof (float ); // input chunk
@@ -776,18 +787,18 @@ __STATIC_INLINE__ void sd_tiling(ggml_tensor* input, ggml_tensor* output, const
776787 ggml_tensor* input_tile = ggml_new_tensor_4d (tiles_ctx, GGML_TYPE_F32, input_tile_size, input_tile_size, input->ne [2 ], 1 );
777788 ggml_tensor* output_tile = ggml_new_tensor_4d (tiles_ctx, GGML_TYPE_F32, output_tile_size, output_tile_size, output->ne [2 ], 1 );
778789 on_processing (input_tile, NULL , true );
779- int num_tiles = ceil (( float )input_width / non_tile_overlap) * ceil (( float )input_height / non_tile_overlap) ;
790+ int num_tiles = num_tiles_x * num_tiles_y ;
780791 LOG_INFO (" processing %i tiles" , num_tiles);
781792 pretty_progress (1 , num_tiles, 0 .0f );
782793 int tile_count = 1 ;
783794 bool last_y = false , last_x = false ;
784795 float last_time = 0 .0f ;
785- for (int y = 0 ; y < input_height && !last_y; y += non_tile_overlap ) {
796+ for (int y = 0 ; y < input_height && !last_y; y += non_tile_overlap_y ) {
786797 if (y + input_tile_size >= input_height) {
787798 y = input_height - input_tile_size;
788799 last_y = true ;
789800 }
790- for (int x = 0 ; x < input_width && !last_x; x += non_tile_overlap ) {
801+ for (int x = 0 ; x < input_width && !last_x; x += non_tile_overlap_x ) {
791802 if (x + input_tile_size >= input_width) {
792803 x = input_width - input_tile_size;
793804 last_x = true ;
@@ -796,9 +807,9 @@ __STATIC_INLINE__ void sd_tiling(ggml_tensor* input, ggml_tensor* output, const
796807 ggml_split_tensor_2d (input, input_tile, x, y);
797808 on_processing (input_tile, output_tile, false );
798809 if (scaled_out) {
799- ggml_merge_tensor_2d (output_tile, output, x * scale, y * scale, tile_overlap * scale);
810+ ggml_merge_tensor_2d (output_tile, output, x * scale, y * scale, tile_overlap_x * scale, tile_overlap_y * scale);
800811 } else {
801- ggml_merge_tensor_2d (output_tile, output, x / scale, y / scale, tile_overlap / scale);
812+ ggml_merge_tensor_2d (output_tile, output, x / scale, y / scale, tile_overlap_x / scale, tile_overlap_y / scale);
802813 }
803814 int64_t t2 = ggml_time_ms ();
804815 last_time = (t2 - t1) / 1000 .0f ;
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