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table: taxonomy_index

nid          tid   
2              1
3              1
3              4
3              5
4              6
4              1
4              3
4              7

table: taxonomy_term_data

tid           vid          name
1              2           java
2              2            php
3              2            c
4              1           tag1
5              1            tag2
6              1            tag3
7              1            tag4
8              1            tag5

now i want to according to nid=$nid get the name where vid=2.? how do i do?

the following is my query code. but it's wrong.

$result = mysql_query('select tid,name form taxonomy_index as ti left join taxonomy_term_data as ttd on ti.tid=ttd.tid where vid=2 and nid=$nid')
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why is wrong what u get ? –  Haim Evgi May 29 '11 at 6:07
    
i put the code in phpmyadmin, it shows you have an error in your sql syntax –  zhuanzhou May 29 '11 at 6:11
1  
the sql looks good, see @GWW answer, i also change "select tid,name" to "select ti.tid,name" –  Haim Evgi May 29 '11 at 6:14
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3 Answers 3

up vote 3 down vote accepted

My guess is that you need to replace your single quotes ' with double quotes ". This is because PHP does not expand variables surrounded by single quotes.

$result = mysql_query("select tid,name from taxonomy_index as ti left join taxonomy_term_data as ttd on ti.tid=ttd.tid where vid=2 and nid=$nid")

EDIT:

You also have from misspelled as form

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select tid,name form taxonomy_index as ti left join taxonomy_term_data as ttd on ti.tid=ttd.tid where vid=2 and nid=2 ,i put this in phpmyadmin's sql run box, it shows an sql error #1064. why? –  zhuanzhou May 29 '11 at 6:19
1  
I just told you why you have from misspelled as form –  GWW May 29 '11 at 6:20
    
i am sorry. i am too carelessly –  zhuanzhou May 29 '11 at 6:24
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I wrote this link on stack overflow so many times and it is the best place where you can find a tutorial to help you get started with mysql, good luck

Php : Database and Other animals

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I think variables in single string quotes are not substitued, therefore try

$result = mysql_query('select tid,name from taxonomy_index as ti left join taxonomy_term_data as ttd on ti.tid=ttd.tid where vid=2 and nid='.$nid)
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i put this code in phpmyadmin, it shows an sql syntax error. why? –  zhuanzhou May 29 '11 at 6:13
    
select tid,name form taxonomy_index as ti left join taxonomy_term_data as ttd on ti.tid=ttd.tid where vid=2 and nid=2 –  zhuanzhou May 29 '11 at 6:13
    
@zhuanzhou: check my answer you have from misspelled as form. –  GWW May 29 '11 at 6:17
    
@GWW thanks i fixed my answer too –  thumbmunkeys May 29 '11 at 6:17
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