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i am creating instances of Form1() on the fly.

i need to be able to show it every time i open it. the result would be a bunch of popping up forms. here is my code. how do i show the form as soon as it is created>?

List<Form1> forms = new List<Form1>();
    string analyte;
    for(int i = 0; i < cbAnalytes.Items.Count; ++i)
    {
        cbAnalytes.SelectedIndex = i;
        analyte = cbAnalytes.Text;
        // Process the object depending on the type
        forms.Add(new Form1(dateStart.Value.ToShortDateString(), dateEnd.Value.ToShortDateString(), cbQCValues.Text, analyte, cbInstruments.Text));


    }
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1 Answer 1

up vote 4 down vote accepted

You would have to specifically call each form's Show() method.
Namely like so:

List<Form1> forms = new List<Form1>();
string analyte;
for(int i = 0; i < cbAnalytes.Items.Count; ++i)
{
    cbAnalytes.SelectedIndex = i;
    analyte = cbAnalytes.Text;
    // Process the object depending on the type
    Form1 aform = new Form1(dateStart.Value.ToShortDateString(), dateEnd.Value.ToShortDateString(), cbQCValues.Text, analyte, cbInstruments.Text);
    aform.Show();
    forms.Add(aform);
}
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