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just print the square but not the image, dont know what is wrong, doesnt throw mistake. Thanks

echo "<img src=\"img/$numero[$i].svg\" alt=\"$numero[$i]\" title=\"$numero[$i]\" width=\"140\" height=\"140\">\n";
  • Well, what does it ouput to the browser? Is it what you expected? – FrankerZ Oct 27 '18 at 16:35
  • this one echo '<img src="img/' . $numero[$i] . '.svg" alt="' . $numero[$i] . '" title="' . $numero[$i] . '" style="width: 140px; height: 140px">';? – Fil Oct 27 '18 at 16:40
  • doesnt work , the lines are into for – David Arguedas Oct 27 '18 at 16:57
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Nothing wrong in your code. Check if you have correct svg image or not at particular location. (inspect using chrome developer tool)

Check using Object tag or if your browser support or not. https://www.w3schools.com/html/html5_svg.asp

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I would recommend to not mix strings with code vars. Always do proper concatenation:

 $str = '<img src="/img/' . $numero[$i] . '.svg"';
 $str .= ' alt="' . $numero[$i] . '"';
 $str .= ' title="' . $numero[$i] . '"';
 $str .= ' width="140" height="140">'. "\n";
 echo $str;
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your code seem right, try checking if the svg image is in the correct image path you placed

i tested with this and is working well

<?php
    $numero = array('imagename', 'image alt', 'title');
    echo "<img src=\"Images/$numero[0].svg\" alt=\"$numero[1]\"   title=\"$numero[2]\" width=\"140\" height=\"140\">\n";
?>
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thank you all, I discovered that it happened

I was missing a bar in front of the img

echo "<img src=\"/img/$numero[$i].svg\" alt=\"$numero[$i]\" title=\"$numero[$i]\" width=\"140\" height=\"140\">\n";

instead of

echo "<img src=\"img/$numero[$i].svg\" alt=\"$numero[$i]\" title=\"$numero[$i]\" width=\"140\" height=\"140\">\n";

I do not see any sense

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