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I don't know what to do, I've been trying to make this work for 4 days.. i think the query is fine... because I print it and i paste it in phpMyAdmin and it works fine.

$cadenaInstruccion = "UPDATE `contactos`.`contacto` 
                    SET `nombre_contacto` = '".$_POST['nombre_contacto1']."',
                        `nombre_usuario` = '".$_SESSION['nombre_usuario']."',
                    `telefono_contacto` = '".$_POST['telefono_contacto1']."',
                    `correo_contacto` = '".$_POST['correo_contacto1']."'
                    WHERE `contacto`.`id_contacto` = 1 LIMIT 1";

        echo $cadenaInstruccion;

    $result = mysqli_query($conexion,cadenaInstruccion) or die ("problema con query");

this is the error php shows Notice: Use of undefined constant cadenaInstruccion - assumed 'cadenaInstruccion' in C:\Program Files\VertrigoServ\www\proyectos\Ejercicio1\actualizar.php on line 22

(line 22 is the last one showed above.)

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closed as too broad by Barmar, andrewsi, cryptic ツ, showdev, Schleis Mar 6 at 20:05

There are either too many possible answers, or good answers would be too long for this format. Please add details to narrow the answer set or to isolate an issue that can be answered in a few paragraphs.If this question can be reworded to fit the rules in the help center, please edit the question.

3 Answers 3

up vote 3 down vote accepted

You forget $.

$result = mysqli_query($conexion,$cadenaInstruccion)
           ----------------------^---
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f***, thank you so much XD –  Santiago Mejía Sánchez Apr 23 '13 at 17:36

You are trying to use

mysqli_query($conexion,cadenaInstruccion )

cadenaInstruccion looks like a undefined constant make it a variable like this

mysqli_query($conexion,$cadenaInstruccion)
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$result = mysqli_query($conexion,cadenaInstruccion) or die ("problema con query");

change to $result = mysqli_query($conexion,$cadenaInstruccion) or die ("problema con query");

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