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This is my Javascript code

 document.addEventListener("deviceready", onDeviceReady, false);

// Populate the database
//
function populateDB(tx) {
    alert("populateDB");
    tx.executeSql('DROP TABLE IF EXISTS DEMO');
    tx.executeSql('CREATE TABLE IF NOT EXISTS DEMO (id unique, data)');
    tx.executeSql('INSERT INTO DEMO (id, data) VALUES (1, "First row")');
    tx.executeSql('INSERT INTO DEMO (id, data) VALUES (2, "Second row")');
}

// Query the database
//
function queryDB(tx) {
    alert("queryDB");
    tx.executeSql('SELECT * FROM DEMO', [], querySuccess, errorCB);
}

// Query the success callback
//
function querySuccess(tx, results) {
    alert("querySuccess");
    // this will be empty since no rows were inserted.
    console.log("Insert ID = " + results.insertId);
    // this will be 0 since it is a select statement
    console.log("Rows Affected = " + results.rowAffected);
    // the number of rows returned by the select statement
    console.log("Insert ID = " + results.rows.length);
}

// Transaction error callback
//
function errorCB(err) {
    alert("errorCB");
    console.log("Error processing SQL: "+err.code);
}

// Transaction success callback
//
function successCB() {
    alert("successCB");
    var db = window.openDatabase("Database", "1.0", "PhoneGap Demo", 200000);
    db.transaction(queryDB, errorCB);
}

// PhoneGap is ready
//
function onDeviceReady() {
    alert("onDeviceReady");
    var db = window.openDatabase("Database", "1.0", "PhoneGap Demo", 200000);
    db.transaction(populateDB, errorCB, successCB);
}

But i am getting this error log

D/DroidGap(1674): DroidGap.loadUrl(file:///android_asset/www/index.html)
D/DroidGap(1674): DroidGap: url=file:///android_asset/www/index.html   baseUrl=file:///android_asset/www/
D/DroidGap(1674): DroidGap.init()
D/SoftKeyboardDetect(1674): Ignore this event
D/SoftKeyboardDetect(1674): Ignore this event
D/dalvikvm(1674): GC_FOR_MALLOC freed 1758 objects / 121720 bytes in 172ms
I/Database(1674): sqlite returned: error code = 14, msg = cannot open file at source   line 25467
D/PhoneGapLog(1674): DroidGap:  onExceededDatabaseQuota estimatedSize: 200000    currentQuota: 0  totalUsedQuota: 0
D/PhoneGapLog(1674): calling quotaUpdater.updateQuota newQuota: 200000
D/PhoneGapLog(1674): INVALID_ACCESS_ERR: DOM Exception 15: A parameter or an operation  was not supported by the underlying object.
D/PhoneGapLog(1674): file:///android_asset/www/index.html: Line 232 :  INVALID_ACCESS_ERR: DOM Exception 15: A parameter or an operation was not supported by the    underlying object.
E/Web Console(1674): INVALID_ACCESS_ERR: DOM Exception 15: A parameter or an operation was not supported by the underlying object. at file:///android_asset/www/index.html:232
D/PhoneGapLog(1674): Error processing SQL: 0
D/PhoneGapLog(1674): file:///android_asset/www/index.html: Line 243 : Error processing SQL: 0

I am using Phonegap version 1.4.0. Whats the problem here?

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3 Answers 3

up vote 1 down vote accepted

According to the Web SQL spec:

The insertId attribute must return the row ID of the row that the SQLResultSet object's SQL statement inserted into the database, if the statement inserted a row. If the statement inserted multiple rows, the ID of the last row must be the one returned. If the statement did not insert a row, then the attribute must instead raise an INVALID_ACCESS_ERR exception.

Your queryDB method does a SELECT. So, by definition, it can't insert any rows. Therefore, insertId is not valid in this context.

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Don't know if you already fixed this, but I was using your same example code, with the same problem. The example was incorrect. Phonegap now has an updated example. Replace your query method with

function querySuccess(tx, results) {
    var len = results.rows.length;
    console.log("DEMO table: " + len + " rows found.");
    for (var i=0; i<len; i++){
        console.log("Row = " + i + " ID = " + results.rows.item(i).id + " Data =  " + results.rows.item(i).data);
    }
}
share|improve this answer
try {
console.log("Insert ID = " + results.insertId);
} catch(exc) {
// console.log(exc)
console.log("Insert ID = " + null);
}
share|improve this answer
    
describe why have you just entered this text,and how it will help user to solve his problem and do read FAQ before answering –  Hamad Jan 11 at 10:13

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