I have a form "fm" that is a simple info window that opens every 10 mins (fm.Show();).

How I can make that every 10 mins it will check if the form "fm" is open and if it is open it closes it and open it again!

Now the form fm is always created with form fm = new form();
so when I try to check if the form is open it will always be false and open a new window even if there is one form before!

I need to have a tool to give it a unique identity and then check if this form with unique identity is opened or not!

I do not want to just update the data on the form (fm), because I have a complicated info with buttons.

The form name is "UpdateWindow"

Solved using the following:

Form fc = Application.OpenForms["UpdateWindow"]; 

if (fc != null) 
   fc.Close(); 

fc.Show();
  • 1
    Why do you want to open it again? You want to create new instance? I mean why don't you want to call Show method one more time? – default locale Oct 5 '10 at 7:37
  • hi, the whole program is an internal tool in our company that check if there is an update for one of our programs, it worked fine, but I need it to close it and open it again because it get updated info – Data-Base Oct 5 '10 at 7:42
  • 2
    Why don't you just add a Timer component to the form and use the timer to force an update of the data in the display? Even better, you could data-bind the controls to an object for automatic updating of the status. – Chris Thompson Oct 5 '10 at 8:03
  • 2
    I Solve it with this solution ... Form fc = Application.OpenForms["UpdateWindow"]; if (fc != null) fc.Close(); fm.Show(); so what do you think guys? – Data-Base Oct 5 '10 at 8:20
  • Declare a global static object of that form type, assign newly created object to that static object. On dispose, set it to null. every time when you will create a new form, check first either the static object is null or not. This is more compact solution than any other. – Lali Feb 10 '14 at 12:58

23 Answers 23

up vote 70 down vote accepted

maybe this helps:

FormCollection fc = Application.OpenForms;

foreach (Form frm in fc)
{
//iterate through
}

Some code in the foreach to detect the specific form and it could be done. Untested though.

Found on http://bytes.com/topic/c-sharp/answers/591308-iterating-all-open-forms

  • Thanks, so how to use it with my form (fm) ? – Data-Base Oct 5 '10 at 7:30
  • if (frm is MyForm) { /* */ }, should do the trick. But if it's just for updating, why not calling a method to update the data? – Sascha Oct 5 '10 at 7:44
  • 10
    I solve it with this .... Form fc = Application.OpenForms["UpdateWindow"]; if (fc != null) fc.Close(); fm.Show(); – Data-Base Oct 5 '10 at 8:19
  • 1
    I got this error after the I close form with it: System.InvalidOperationException: 'Collection was modified; enumeration operation may not execute.' – noobsee Aug 14 '17 at 8:11

I know I am late... But for those who are curious... This is another way

if (Application.OpenForms.OfType<UpdateWindow>().Count() == 1)
    Application.OpenForms.OfType<UpdateWindow>().First().Close();

UpdateWindow frm = new UpdateWindow()
frm.Show();

Suppose if we are calling a form from a menu click on MDI form, then we need to create the instance declaration of that form at top level like this:

Form1 fm = null;

Then we need to define the menu click event to call the Form1 as follows:

private void form1ToolStripMenuItem_Click(object sender, EventArgs e)
{
    if (fm == null|| fm.Text=="")
    {
        fm = new Form1();              
        fm.MdiParent = this;
        fm.Dock = DockStyle.Fill;
        fm.Show();
    }
    else if (CheckOpened(fm.Text))
    {
        fm.WindowState = FormWindowState.Normal;
        fm.Dock = DockStyle.Fill;
        fm.Show();
        fm.Focus();               
    }                   
}

The CheckOpened defined to check the Form1 is already opened or not:

private bool CheckOpened(string name)
{
    FormCollection fc = Application.OpenForms;

    foreach (Form frm in fc)
    {
        if (frm.Text == name)
        {
            return true; 
        }
    }
    return false;
}

Hope this will solve the issues on creating multiple instance of a form also getting focus to the Form1 on menu click if it is already opened or minimized.

I'm not sure that I understand the statement. Hope this helps. If you want to operate with only one instance of this form you should prevent Form.Dispose call on user close. In order to do this, you can handle child form's Closing event.

private void ChildForm_FormClosing(object sender, FormClosingEventArgs e)
{
    this.Hide();
    e.Cancel = true;
}

And then you don't need to create new instances of frm. Just call Show method on the instance.

You can check Form.Visible property to check if the form open at the moment.

private ChildForm form = new ChildForm();

private void ReopenChildForm()
{
    if(form.Visible)
    {
        form.Hide();
    }
    //Update form information
    form.Show();
}

Actually, I still don't understand why don't you just update the data on the form.

  • this is interesting, but how I can identify the form, I mean we use form fm = new form(); so it is always new form, so how I can identify the form? – Data-Base Oct 5 '10 at 7:52
  • If it is only one such form you can create class level variable for it. If there are a plenty of forms created in the bunch of methods, you better use Sascha's approach) – default locale Oct 5 '10 at 7:57
  • 1
    I solve it with checking if the form open by name then close it if it is open Form fc = Application.OpenForms["UpdateWindow"]; if (fc != null) fc.Close(); fm.Show(); – Data-Base Oct 5 '10 at 8:18
Form1 fc = Application.OpenForms["Form1 "] != null ? (Form1 ) Application.OpenForms["Form1 "] : null;
if (fc != null)
{
    fc.Close();
}

It will close the form1 you can open that form again if you want it using :

Form1 frm = New Form1();
frm.show();
if( ((Form1)Application.OpenForms["Form1"]).Visible == true)
    //form is visible
else
    //form is invisible

where Form1 is the name of your form.

Try this, it will work :

//inside main class
Form1 Fm1 = new Form1();<br>

//in button click
if (Fm1.IsDisposed)
{
    Fm1 = new Form();
}
Fm1.Show();
Fm1.BringToFront();
Fm1.Activate();

try this MDICHILD function

public void mdiChild(Form mdiParent, Form mdiChild)
{
    foreach (Form frm in mdiParent.MdiChildren)
    {
        // check if name equals
        if (frm.Name == mdiChild.Name)
        {
            //close if found

            frm.Close();

            return;
        }
    }

    mdiChild.MdiParent = mdiParent;

    mdiChild.Show();

    mdiChild.BringToFront();
}

Try to wire below,

private void frmMyForm_Deactivate(object sender, EventArgs e)
    {
        // Raise your flag here.
    }

By wiring above event, it will tell you whenever the form is minimized, partially/totally hided by another form.

This is what I used to close all open forms (except for the main form)

    private void CloseOpenForms()
    {

           // Close all open forms - except for the main form.  (This is usually OpenForms[0].
           // Closing a form decrmements the OpenForms count
           while (Application.OpenForms.Count > 1)
           {
               Application.OpenForms[Application.OpenForms.Count-1].Close();
           }
    }

Funny, I had to add to this thread.

1) Add a global var on form.show() and clear out the var on form.close()

2) On the parent form add a timer. Keep the child form open and update your data every 10 min.

3) put timer on the child form to go update data on itself.

* Hope This will work for u

System.Windows.Forms.Form f1 = System.Windows.Forms.Application.OpenForms["Order"];
if(((Order)f1)!=null)
{
//open Form
}
else
{
//not open
}

try this

 bool IsOpen = false;
    foreach (Form f in Application.OpenForms)
    {
        if (f.Text == "Form2")
        {
            IsOpen = true;
            f.Focus();
            break;
        }
    }

    if (IsOpen == false)
    {
        Form2 f2 = new Form2();
        f2.MdiParent = this;
        f2.Show();
    }
 private static Form IsFormAlreadyOpen(Type formType)
 {
     return Application.OpenForms.Cast<Form>().FirstOrDefault(openForm => openForm.GetType() == formType);
 }
  • While this code snippet may solve the question, including an explanation really helps to improve the quality of your post. Remember that you are answering the question for readers in the future, and those people might not know the reasons for your code suggestion. Please also try not to crowd your code with explanatory comments, as this reduces the readability of both the code and the explanations! – FrankerZ Jul 26 '16 at 1:51

Form only once

If your goal is to diallow multiple instaces of a form, consider following ...

public class MyForm : Form
{
    private static MyForm alreadyOpened = null;

    public MyForm()
    {
        // If the form already exists, and has not been closed
        if (alreadyOpened != null && !alreadyOpened.IsDisposed)
        {
            alreadyOpened.Focus();            // Bring the old one to top
            Shown += (s, e) => this.Close();  // and destroy the new one.
            return;
        }           

        // Otherwise store this one as reference
        alreadyOpened = this;  

        // Initialization
        InitializeComponent();
    }
}
Form user_rpt = Application.OpenForms["frmUesr_reports"];
        if (user_rpt == null)
        {
            /// Do Something here
        }

Try This This is the short idea to check Form open or not open

In my app I had a mainmenu form that had buttons to navigate to an assortment of other forms (aka sub-forms). I wanted only one instance of each sub-form to be running at a time. Plus I wanted to ensure if a user attempted to launch a sub-form already in existence, that the sub-form would be forced to show "front&center" if minimized or behind other app windows. Using the currently most upvoted answers, I refactored their answers into this:

private void btnOpenSubForm_Click(object sender, EventArgs e)
    {

        Form fsf = Application.OpenForms["formSubForm"];

        if (fsf != null)
        {
            fsf.WindowState = FormWindowState.Normal;
            fsf.Show();
            fsf.TopMost = true;
        }
        else
        {
            Form formSubForm = new FormSubForm();
            formSubForm.Show();
            formSubForm.TopMost = true;
        }
    }
if (Application.OpenForms["Form_NAME"] == null)
{
   new Form_NAME().Show();
}

If the form instance is not open it will enter the IF loop.

This worked form me:

public void DetectOpenedForm()
{
    FormCollection AllForms = Application.OpenForms;
    Boolean FormOpen = false;
    Form OpenedForm = new Form();
    foreach (Form form in AllForms)
    {
        if (form.Name == "YourFormName")
        {
            OpenedForm = form;
            FormOpen = true;
        }
    }
    if (FormOpen == true)
    {
        OpenedForm.Close();
    }
}
  • Remenber to add more information about what you're doing on your code – xsami Jul 20 '17 at 2:53

I think my method is the simplest.

    Form2 form2 = null;
    private void SwitchFormShowClose_Click(object sender, EventArgs e)
    {  
        if(form2 == null){
            form2 = new Form2();
            form2.Show();
        }
        else{
            form2.Close();
            form2 = null;
        }
    }

The below actually works very well.

private void networkInformationToolStripMenuItem_Click(object sender, EventArgs e)
{
    var _open = false;
    FormCollection fc = Application.OpenForms;
    foreach (Form frm in fc)
    {
        if (frm.Name == "FormBrowseNetworkInformation")
        {
            _open = true;
            frm.Select();
            break;
        }
    }
    if (_open == false)
    {
        var formBrowseNetworkInformation = new FormBrowseNetworkInformation();
        formBrowseNetworkInformation.Show();
    }
}
  • Thank you for this code snippet, which might provide some limited short-term help. A proper explanation would greatly improve its long-term value by showing why this is a good solution to the problem and would make it more useful to future readers with other, similar questions. Please edit your answer to add some explanation, including the assumptions you've made – Shawn C. Jan 26 at 14:20
Form fc = Application.OpenForms["UpdateWindow"]; 

if (fc != null) 
   fc.Close(); 

fc.Show();

In addition, may be this will help


class Helper
    {
        public void disableMultiWindow(Form MdiParent, string formName)
        {
            FormCollection fc = Application.OpenForms;
            try
            {
                foreach (Form form in Application.OpenForms)
                {
                    if (form.Name == formName)
                    {
                        form.BringToFront();
                        return;
                    }
                }

                Assembly thisAssembly = Assembly.GetExecutingAssembly();
                Type typeToCreate = thisAssembly.GetTypes().Where(t => t.Name == formName).First();
                Form myProgram = (Form)Activator.CreateInstance(typeToCreate);
                myProgram.MdiParent = MdiParent;
                myProgram.Show();
            }
            catch (Exception ex) { MessageBox.Show(ex.Message); }
        }
    }

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