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So i have the PHP code to call and display the product from mysql.. i have a problem with displaying the picture.. when a user add the item to database, (database as shown in picture) when the picture is uploaded, its store in a folder in localhost and on the database.. it will auto create a random number for the picture to store.. so how should i call the picture to be viewed? in line:

img/ is the folder in localhost.

DATABASE EXP:

enter image description here

<?php 
// Run a select query to get my letest 6 items
// Connect to the MySQL database  
include "dbconnect.php"; 
$dynamicList = "";
$sql = mysql_query("SELECT * FROM product ORDER BY proDate DESC LIMIT 6");
$productCount = mysql_num_rows($sql); // count the output amount
if ($productCount > 0) {
	while($row = mysql_fetch_array($sql)){ 
             $proID = $row["proID"];
			 $proName = $row["proName"];
			 $proPrice = $row["proPrice"];
			 $proDate = strftime("%b %d, %Y", strtotime($row["proDate"]));
			 $dynamicList .= '
	  
							<div class="single-product">
                                <div class="product-f-image">
                                    <img src="img/' . $proID . '.jpg" alt="">
                                    <div class="product-hover">
                                    <a href="#" class="add-to-cart-link"><i class="fa fa-shopping-cart"></i> Add to cart</a>
                                    <a href="single-product.php?id=' . $proID . '" class="view-details-link"><i class="fa fa-link"></i> See details</a>
                                    </div>
                                </div>
                                
                            <h2>' . $proName . '</h2>

								<div class="product-carousel-price">
                                <ins>$' . $proPrice . '</ins> <del>$425.00</del>
                                </div>                                 
                            </div>
	  ';
	  
    }
} else {
	$dynamicList = "no new products";
}
mysql_close();
?>
<?php echo $dynamicList; ?>

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  • picture should be called in line "<img src="img/' . $proID . '.jpg" alt="">" – name Jan 13 '17 at 11:40
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    <?php 
    // Run a select query to get my letest 6 items
    // Connect to the MySQL database  
    include "dbconnect.php"; 
    $dynamicList = "";
    $sql = mysql_query("SELECT * FROM product ORDER BY proDate DESC LIMIT 6");
    $productCount = mysql_num_rows($sql); // count the output amount
    if ($productCount > 0) {
        while($row = mysql_fetch_array($sql)){ 
                 $proID = $row["proID"];
                 $proImg = $row["proImg"];
                 $proName = $row["proName"];
                 $proPrice = $row["proPrice"];
                 $proDate = strftime("%b %d, %Y", strtotime($row["proDate"]));
                 $dynamicList .= '

                                <div class="single-product">
                                    <div class="product-f-image">
                                        <img src="img/' . $proImg . '" alt="">
                                        <div class="product-hover">
                                        <a href="#" class="add-to-cart-link"><i class="fa fa-shopping-cart"></i> Add to cart</a>
                                        <a href="single-product.php?id=' . $proID . '" class="view-details-link"><i class="fa fa-link"></i> See details</a>
                                        </div>
                                    </div>

                                <h2>' . $proName . '</h2>

                                    <div class="product-carousel-price">
                                    <ins>$' . $proPrice . '</ins> <del>$425.00</del>
                                    </div>                                 
                                </div>
          ';

        }
    } else {
        $dynamicList = "no new products";
    }
    mysql_close();
    ?>
7
  • I have added $proImg = $row["proImg"]; as you are not fetching the image from DB. Kindly, check my code. Thanks. – user1544541 Jan 13 '17 at 11:45
  • can you please provide the names of the images you have placed in the folder? Thanks. – user1544541 Jan 13 '17 at 12:43
  • 831925 ex of picture number – name Jan 13 '17 at 12:47
  • Kindly provide line wise the names if images with extensions. Thanks. – user1544541 Jan 13 '17 at 12:48
  • sorry, what do u mean? – name Jan 13 '17 at 12:51
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Are you sure, that under img/1.jpg, there is a picture? You wrote that there will be a random number for the picture, but as I can see, You are using database primary key identifier.

3
  • <img src="img/' . $proImg . '.jpg" alt=""> i added $proImg because im not sure what to add there.. img/ is the folder in localhost.. and the picture exist in the folder.. but its a random number.. – name Jan 13 '17 at 12:37
  • But are your pictures in the img/ folder stored under their names, like hat.jpg, or under primary keys, like 1.jpg? You should choose to use img/' . $proImg or img/' . $proID . '.jpg respectively, depending on your decision. – agienka Jan 13 '17 at 12:59
  • If your pictures are stored under 831925.jpg name, you should add an additional collumn to your database table, something like numImg, and save the random value there. Then you would just refer to the picture like that: img/' . $row["numImg"] . '.jpg – agienka Jan 13 '17 at 13:05

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