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I have been working on this for two days, read everything and I could not get my answer. Thanks in advance for looking at this!!!

I have a query from joining a few tables, it outputs what I am looking for Here is my select

mysql_select_db($database_dbConnect, $dbConnect);
$query_rsMale = "SELECT  r.points, r.license, l.acaNo, l.firstName, l.lastName,   
l.cxage, l.cxcat,l.cxteam, l.city, l.state, l.gender     FROM rankingsM r INNER  
JOIN field f ON  r.license=f.USAC_No INNER JOIN racers l ON  l.usacNo=f.USAC_No
ORDER BY points";
$rsMale = mysql_query($query_rsMale, $dbConnect) or die(mysql_error());
$row_rsMale = mysql_fetch_assoc($rsMale);
$totalRows_rsMale = mysql_num_rows($rsMale);

echo "<br> This is num " . $totalRows_rsMale . "<br>";

I have downloaded this to a csv file on other pages and it works fine. Then I take that array and put it into another array with implode.

$newData = implode(",",$row_rsMale );
$newData = mysql_real_escape_string($newData);

echo "<br> This is newdata <br>". $newData;

This is where I get the Column not matching error. I have checked the column they match, I have checked the data types, they match.

 $insertSQL ="INSERT INTO ranking (points, usacNo, acaNo, firstName, lastName,
 cxage, cxcat, cxteam, city, state, gender)
 SELECT ( '$newData' )";

 $Result1 = mysql_query($insertSQL, $dbConnect) or die(mysql_error());

 echo "<br>Insert complete!<br>";

Next I did a display of the columns

 $rankingSQL ="Select * from ranking";

 $result = mysql_query($rankingSQL, $dbConnect) or die(mysql_error());
echo "<table><tr>";
for($i = 0; $i < mysql_num_fields($result); $i++) {
$field_info = mysql_fetch_field($result, $i);
echo "<th>{$field_info->name},</th>";
}

This is what is displaying on my page on my website This is before insert This is num 22

This is newdata 185.34,362355,4174,Shawn,Lortie,47,2,Rally Sport Cycling Team,BOULDER,CO,M points, usacNo, acaNo, firstName, lastName, cxage, cxcat, cxteam, city, state, gender, (I added the commas on the columns for easy reading.) Column count doesn't match value count at row 1

I ended up going back to ` while ($l = mysql_fetch_array($result)) {

{
  $insertSQL = sprintf("INSERT INTO ranking (points, usacNo, acaNo, firstName,   
lastName, cxage, cxcat, cxteam, city, `state`, gender) VALUES (%s, %s, %s, %s, %s, %s, %s, %s, %s, %s, %s)",
                   GetSQLValueString($l ['points'], "double"),
                   GetSQLValueString($l ['license'], "int"),
                   GetSQLValueString($l ['acaNo'], "int"),
                   GetSQLValueString($l ['firstName'], "text"),
                   GetSQLValueString($l ['lastName'], "text"),
                   GetSQLValueString($l ['cxage'], "int"),
                   GetSQLValueString($l ['cxcat'], "int"),
                   GetSQLValueString($l ['cxteam'], "text"),
                   GetSQLValueString($l ['city'], "text"),
                   GetSQLValueString($l ['state'], "text"),
                   GetSQLValueString($l ['gender'], "text"));

  $Result1 = mysql_query($insertSQL, $dbConnect) or die("<br>Error is " . mysql_error());
}`
share|improve this question

marked as duplicate by Jocelyn, hjpotter92, Toon Krijthe, Sean Vieira, tkanzakic Apr 17 '13 at 6:36

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Are there any commas in the actual data values? And you really should be using built-in functions like fputcsv() and fgetcsv() to write and read your CSV file –  Mark Baker Nov 20 '12 at 17:30
    
I did on the other pages, this page is not to write to csv files, it is to insert into another table. I was stating the the complex join was getting me the data I wanted. –  Maxine Bodine Nov 20 '12 at 17:36
    
There are no commas in actual data values. –  Maxine Bodine Nov 20 '12 at 17:36
    
I did not add the commas into the newdata displayed. Do you think it is the issue? –  Maxine Bodine Nov 20 '12 at 17:38
    
I thought after the impolde I needed to use the mysql_real_escape_string to remove them? –  Maxine Bodine Nov 20 '12 at 17:40

1 Answer 1

I believe the problem is with the following statement:

$insertSQL ="INSERT INTO ranking (points, usacNo, acaNo, firstName, lastName,
                                  cxage, cxcat, cxteam, city, state, gender)
             SELECT ( '$newData' )";

Once php expands this with your data, you will have the following SQL statement:

INSERT INTO ranking (points, usacNo, acaNo, firstName, lastName,
                     cxage, cxcat, cxteam, city, state, gender)
SELECT ( '185.34,362355,4174,Shawn,Lortie,47,2,Rally Sport Cycling Team,BOULDER,CO,M' )

The SELECT is returning one field. So you are feeding one field to an insert statement with 11 fields and this generates the error.

You need to form the insert correctly, perhaps something like:

$newData = implode("','",$row_rsMale );
$insertSQL = "INSERT INTO ranking (...) VALUES ('$newData')";

This should result in the following:

INSERT INTO ranking (...) VALUES ('185.34','362355','4174','Shawn','Lortie','47','2','Rally Sport Cycling Team','BOULDER','CO','M')

This isn't optimal as it surrounds numeric arguments with quotes, but perhaps your database will do the conversion.

If you don't have to go through the CSV step, then I would do the insert with a subselect, e.g.

INSERT INTO ranking (points, usacNo, acaNo, firstName, lastName,
                     cxage, cxcat, cxteam, city, state, gender) 
(SELECT  r.points, r.license, l.acaNo, l.firstName, l.lastName,
                     l.cxage, l.cxcat,l.cxteam, l.city, l.state, l.gender
FROM rankingsM r 
INNER JOIN field f ON r.license=f.USAC_No 
INNER JOIN racers l ON l.usacNo=f.USAC_No
ORDER BY points)

One operation does the whole thing and returns the number of rows inserted. No type wrangling, and very efficient from a database/app perspective as you are not pulling all of the data back into PHP just to feed it back in again.

share|improve this answer
    
It didn't like that. If I take this select query and either sql the database directly within phpAdmin or use it to create a csv file it works. When I put it here copy and pasted from other working files a second time to make sure no typos It tells me I have an error You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'FROM rankingsM r INNER JOIN field f ON r.license=f.USAC_No INNER JOIN racers l ' at line 3 –  Maxine Bodine Nov 20 '12 at 18:50
    
Sounds like you tried the insert/select? Could you show the updated code? –  schtever Nov 20 '12 at 19:24
    
I wanted to do the insert/select I updated it on the top I think. Not used to this. –  Maxine Bodine Nov 20 '12 at 22:33

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