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                        <journal-meta>
            <issn>1642-2511</issn>
                                </journal-meta>
        <article-meta>
            <title-group>
                                    <article-title>The impact of the orientation error of scans to the change of the length of the  component of situation error in the cloud of points</article-title>
                                    <article-title>Wpływ błędu orientacji skanów na zmianę długości jako składowej błędu położenia punktu w chmurze</article-title>
                            </title-group>

                        <contrib-group>
                                                            <contrib contrib-type="author" corresp="yes">
                            <name>
                                <surname>Gawałkiewicz</surname>
                                <given-names>Rafał </given-names>
                            </name>
                            <role>author</role>
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                                                                                        <aff id="aff-1">
                    <institution-wrap>
                        <institution>AGH University of Science and Technology in Krakow, Faculty of Mining Surveying and Environmental Engineering</institution>
                                            </institution-wrap>
                </aff>
                            
            <author-notes>
                                    <corresp id="cor-1">Correspondence to: Rafał  Gawałkiewicz <email>rgawal@wp.pl</email></corresp>
                            </author-notes>

                            <pub-date date-type="pub" publication-format="electronic" iso-8601-date="2016-11-16">
                    <day>16</day>
                    <month>11</month>
                    <year>2016</year>
                </pub-date>
            
            <volume>Vol. 15 (2016)</volume>
            <issue>2016</issue>
                        <fpage>57</fpage>
                                    <lpage>71</lpage>
            
            <permissions>
                <copyright-statement>Copyright &#x00A9; 2016</copyright-statement>
                                    <copyright-year>2016</copyright-year>
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        &lt;p&gt;At present, the market of geodetic equipment was enriched by the large group of scanning instruments, which are massively used in the process of inventory and monitoring of various engineering constructions. There is more and more interest in this type of technology, because it is limiting the role of users, speeding up the measurement and allows higher amount of data that can be used in the individual stand. In Poland, new geodetic regulations defi ne the conditions of applying this type of measurement sets in basic works of geodetic services. Nowadays, properly processed data can make the element of geodetic resource. It is common to apply laser scanning in inventory for a very large number of objects on the surface and underground. These objects have often a complicated geometry and are difficult to reach, so there are no possibilities to carry out the measurement, according to commonly accepted principles, looking for optimal measurement solutions guaranteeing adequate accuracy. The results of detail tests of geodetic technologies (carried out worldwide by the scientific and research centres), allow the conclusions about the possibility to apply them in a specific field situation or specific geometry of the object. In the article, the usefulness and accuracy of reference signals applied in the transformation of the clouds of reference signals point and the impact of the inaccuracy in recognizing the centre of the signal (as fully automatic process) to the value of the scan rotation and the change of values of the measured length due to the title of twisting the reflecting plane.&lt;/p&gt;
    </body>
    <back>
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</article>
