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This is a follow up question to my previous one. I want to write a mysql statements that echoes every entry that starts with letter B.

Function.php

function getCategory() {
$query = mysql_query("SELECT author FROM lyrics WHERE author [starts with letter B]") or die(mysql_error());
while ($row = mysql_fetch_assoc($query)) { ?>
    <p><a href="##"><?= $row['author']; ?></a></p>
    <?php }

Category.php?category=b

<?php include 'includes/header.php' ?>
<?php getCategory(); ?>
<?php include 'includes/footer.php' ?>

Like that I guess. And then one for every letter of the alphabet, and one with misc (numbers etc)

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3 Answers 3

up vote 30 down vote accepted
SELECT author FROM lyrics WHERE author LIKE 'B%';

Make sure you have an index on author, though!

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Okay thanks, that was easier then expected. One weird problem I'm having though: Your version works great. But as soon as I change it to like: $first = $_GET['category']; $first = $first[0] . "%"; $query = mysql_query("SELECT author FROM lyrics WHERE author LIKE ".$first."") or die(mysql_error()); it doesn't work anymore. Even if I change $first = "b%"; it doesn't work. –  user1333327 Apr 14 '12 at 20:33
1  
Its not weird problem its your misunderstanding of things. % doesn't works with =. if you use equal then you have to provide the exact match when you use ="b%" it found the value b% in the DB not started with b. To find starting values you must have to use like. –  Shehzad Apr 14 '12 at 22:19
    
The php above is susceptible to SQL injection. Use prepared statements & placeholders, please. –  Aaron Brown Apr 15 '12 at 12:20
1  
@AaronBrown user1333327's code is, not mine. Might want to clarify that. –  ceejayoz Apr 15 '12 at 17:01
    
Yes, ceejayoz. Didn't mean to imply your code was the issue. –  Aaron Brown Apr 15 '12 at 19:04

Following your comment posted to ceejayoz's answer, two things are messed up a litte:

  1. $first is not an array, it's a string. Replace $first = $first[0] . "%" by $first .= "%". Just for simplicity. (PHP string operators)

  2. The string being compared with LIKE operator should be quoted. Replace LIKE ".$first."") by LIKE '".$first."'"). (MySQL String Comparison Functions)

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This will work for MYSQL

SELECT Name FROM Employees WHERE Name REGEXP '^[B].*$'

In this REGEXP stands for regular expression

and

this is for T-SQL

SELECT Name FROM Employees WHERE Name LIKE '[B]%'
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