如何以像素为单位获取字符串的每个字形的大小?我使用 CGFontGetGlyphBBoxes 来获取字符串中每个字形的边界框并获取以下值:
2011-04-18 15:34:56.809 TextSize[3604:207] bbox['d'] = {{56, -38}, {949, 1512}}
2011-04-18 15:34:56.811 TextSize[3604:207] bbox['e'] = {{72, -38}, {978, 1135}}
2011-04-18 15:34:56.811 TextSize[3604:207] bbox['m'] = {{132, 0}, {1441, 1095}}
2011-04-18 15:34:56.812 TextSize[3604:207] bbox['o'] = {{59, -39}, {998, 1141}}
如果我正确理解以字体单位表示的这些值。这些值到底是什么意思,如何将其转换为像素?CGFontGetGlyphAdvances 和 CGFontGetGlyphBBoxes 返回的值有什么区别?使用 CGFontGetGlyphAdvances 我得到以下信息:
2011-04-18 15:34:56.809 TextSize[3604:207] advance['d'] = 1139, bbox = {{56, -38}, {949, 1512}}
2011-04-18 15:34:56.811 TextSize[3604:207] advance['e'] = 1139, bbox = {{72, -38}, {978, 1135}}
2011-04-18 15:34:56.811 TextSize[3604:207] advance['m'] = 1706, bbox = {{132, 0}, {1441, 1095}}
2011-04-18 15:34:56.812 TextSize[3604:207] advance['o'] = 1139, bbox = {{59, -39}, {998, 1141}}
例如,如果我想计算字符串的整个宽度(在我的情况下为“演示”),我应该使用哪些值(bbox.size.width 或 Advance)?