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zenodo40/100

Figs. 33-34 – male antennae. 33 in Revision of Central European species of the Aclista scutellaris complex (Hymenoptera: Diapriidae)

Figs. 33-34 – male antennae. 33 – Aclista pseudobitensis sp. nov.; 34 – A. pseudosoror sp. nov. Scale bar = 3.0 mm. – male fore tibia. 35 – A. angusta (Kieffer, 1909); 36 – A. scutellaris (Thomson, 1859). Scale bar = 0.5 mm.

opencc-by-4.0Dec 2007View details →
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Figs. 25-32 – female antennae. 25 in Revision of Central European species of the Aclista scutellaris complex (Hymenoptera: Diapriidae)

Figs. 25-32 – female antennae. 25 – Aclista angusta (Kieffer, 1909); 26 – A. bitensis (Kieffer, 1909); 27 – A. crassistilus (Kieffer, 1909); 28 – A. szelenyii (Móczár, 1938); 29 – A. pseudobitensis sp. nov.; 30 – A. pseudosoror sp. nov.; 31 – A. neglecta (Kieffer, 1907); 32 – A. scutellaris (Thomson, 1859). Scale bar = 1.0 mm.

opencc-by-4.0Dec 2007View details →
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Figs 74–78 in Rhyparoclava pyrrhocoroides, a new genus and species of autapomorphic Rhyparochromidae with clavate antennae from Madagascar (Hemiptera: Heteroptera)

Figs 74–78. Rhyparoclava pyrrhocoroides gen. & sp. nov., wart-like tubercles (marked by white arrows), SEM micrographs. 74 – thorax and abdomen, male, ventral view (45×); 75 – abdomen, male, lateral view (65×); 76 – scapes, ventral view (120×); 77 – scutellum and hemelytron, dorsal view (75×); 78 – metapleuron with ostiole and peritreme, ventrolateral view (250×). Scale bars: 0.5 mm (74–77), 0.1 mm (78). (SEM micrographs by P. Baňař).

opencc-by-4.0Nov 2016View details →
zenodo40/100

Figs. 40–51. Antennae. 40, Plocamocera castanea. 41, P. pupula. 42, P. confrater. 43, P. aliguantula. 44, P. minima. 45. P. manausensis. 46, P. coactilis. 47, P. sericella. 48, P. argentea. 49, P. auratilis. 50, P. sesquipedalis. 51, P in Classification, Natural History, And Evolution Of The Epiphloeinae (Coleoptera: Cleridae). Part Ii. The Genera Chaetophloeus Opitz And Plocamocera Spinola

Figs. 40–51. Antennae. 40, Plocamocera castanea. 41, P. pupula. 42, P. confrater. 43, P. aliguantula. 44, P. minima. 45. P. manausensis. 46, P. coactilis. 47, P. sericella. 48, P. argentea. 49, P. auratilis. 50, P. sesquipedalis. 51, P. lucis.

opencc-by-4.0Jan 2004View details →
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Figs. 213–218. Aedeagi and antenna. Aedeagi. 213. Plocamocera castanea. 214. P. procera. 215. P. confrater. 216. P. buenavista. Antenna. 217. P. buenavista. 218. P in Classification, Natural History, And Evolution Of The Epiphloeinae (Coleoptera: Cleridae). Part Ii. The Genera Chaetophloeus Opitz And Plocamocera Spinola

Figs. 213–218. Aedeagi and antenna. Aedeagi. 213. Plocamocera castanea. 214. P. procera. 215. P. confrater. 216. P. buenavista. Antenna. 217. P. buenavista. 218. P. aura.

opencc-by-4.0Jan 2004View details →
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Figs. 62–84. Antennae. 62. Aphelocerus sagittarius. 63. A. irroratus. 64. A. naevius. 65. A. triangulus. 66. A. extensivus. 67. A. humerus. 68. A. argus. 69. A. protenus. 70. A. arenatus. 71. A. patulus. 72. A. monteverde. 73. A. chondrus. 74. A. catie. 75. A. chiriqui. 76. A. immarginatus. 77. A. anticus. 78. A. yungas. 79. A. batesi. 80. A. bufustis. 81. A. acanthus. 82. A. sturnus. 83. A. myrmecoides. 84. A in Classification, Natural History, And Evolution Of The Genus Aphelocerus Kirsch (Coleoptera: Cleridae: Clerinae)

Figs. 62–84. Antennae. 62. Aphelocerus sagittarius. 63. A. irroratus. 64. A. naevius. 65. A. triangulus. 66. A. extensivus. 67. A. humerus. 68. A. argus. 69. A. protenus. 70. A. arenatus. 71. A. patulus. 72. A. monteverde. 73. A. chondrus. 74. A. catie. 75. A. chiriqui. 76. A. immarginatus. 77. A. anticus. 78. A. yungas. 79. A. batesi. 80. A. bufustis. 81. A. acanthus. 82. A. sturnus. 83. A. myrmecoides. 84. A. scutellaris.

opencc-by-4.0May 2005View details →
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Figs. 47–61. Habitus view and antennas. 47 in Classification, Natural History, And Evolution Of The Genus Aphelocerus Kirsch (Coleoptera: Cleridae: Clerinae)

Figs. 47–61. Habitus view and antennas. 47. Aphelocerus formicoides (habitus, lateral view). 48– 61. Antennas. 48. A. ciliaris. 49. A. inconstans. 50. A. domus. 51. A. echinatus. 52. A. bispineus. 53. A. citimus. 54. A. leucomelas. 55. A. coalitus. 56. A. inbatus. 57. A. coactus. 58. A. nitidus. 59. A. lividus. 60. A. cornuatus. 61. A. acutus.

opencc-by-4.0May 2005View details →
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Figs. 66–73. 66–69. Parammobatodes rozeni female. 66. Labrum laterally. 67. Labrum dorsally. 68. Antenna from left. 69. Frons sculpture. 70–73. Parammobatodes nuristanus, female. 70. Labrum laterally. 71. Labrum dorsally. 72. Antenna from left. 73 in Oocytes, Eggs, and Ovarioles of Some Long-Tongued Bees (Hymenoptera: Apoidea)

Figs. 66–73. 66–69. Parammobatodes rozeni female. 66. Labrum laterally. 67. Labrum dorsally. 68. Antenna from left. 69. Frons sculpture. 70–73. Parammobatodes nuristanus, female. 70. Labrum laterally. 71. Labrum dorsally. 72. Antenna from left. 73. Frons sculpture.

opencc-by-4.0Feb 2003View details →
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Figs. 1–9. Dufourea holocyanea. 1. Entire postdefecating larva, lateral view. 2. Predefecating larva, lateral view. 3. Head, frontal view. 4. Head, lateral view. 5. Spiracle, side view. 6. Antenna, maximum lateral profile. 7–9 in Immatures of Rophitine Bees, with Notes on their Nesting Biology (Hymenoptera: Apoidea: Halictidae)

Figs. 1–9. Dufourea holocyanea. 1. Entire postdefecating larva, lateral view. 2. Predefecating larva, lateral view. 3. Head, frontal view. 4. Head, lateral view. 5. Spiracle, side view. 6. Antenna, maximum lateral profile. 7–9. Right mandible, dorsal, inner, and ventral views, respectively. Scale refers to figs. 1, 2.

opencc-by-4.0Apr 2008View details →
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Figure 14. Antennae. A, Agalope trimacula. B, Rhodopsona rutila. C, D, Eterusia aedea formosana. E, Cyclosia midama. F, Heteropan scintillans. G, H, Callizygaena glacon. I, Adscita statices. J, Inouela formosensis. K, Zygaena filipendulae. L, Phauda mimica. M, N, Lactura dives. O, Anomoeotis levis. P, Himantopteus fuscinervis. Q, R in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)

Figure 14. Antennae. A, Agalope trimacula. B, Rhodopsona rutila. C, D, Eterusia aedea formosana. E, Cyclosia midama. F, Heteropan scintillans. G, H, Callizygaena glacon. I, Adscita statices. J, Inouela formosensis. K, Zygaena filipendulae. L, Phauda mimica. M, N, Lactura dives. O, Anomoeotis levis. P, Himantopteus fuscinervis. Q, R, Chalcosiopsis variata.

opencc-by-4.0Feb 2005View details →
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Fig. 5. Left antenna, dorsal view. A in A review of Paratranes Zimmerman, 1994, Xanthorrhoea-associated weevils of the Tranes group (Coleoptera, Curculionidae, Molytinae), with description of a new species

Fig. 5. Left antenna, dorsal view. A. Paratranes monopticus (Pascoe, 1870). B. P. zimmermani sp. nov. Scale bars = 0.5 mm.

opencc-by-4.0Sep 2021View details →
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Figs 67–76. Antenna. 67. Oidanothrips frontalis. 68. Plectrothrips crassiceps. 69. Preeriella armigera. 70. Psalidothrips amens. 71. Psalidothrips lewisi. 72. Psephenothrips leptoceras. 73. Pygmaeothrips angusticeps. 74. Stephanothrips kentingensis. 75. Strepterothrips orientalis. 76 in Key to the fungus-feeder Phlaeothripinae species from China (Thysanoptera: Phlaeothripidae)

Figs 67–76. Antenna. 67. Oidanothrips frontalis. 68. Plectrothrips crassiceps. 69. Preeriella armigera. 70. Psalidothrips amens. 71. Psalidothrips lewisi. 72. Psephenothrips leptoceras. 73. Pygmaeothrips angusticeps. 74. Stephanothrips kentingensis. 75. Strepterothrips orientalis. 76. Streptothrips tibialis.

opencc-by-4.0Dec 2014View details →
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Figs 57–66. Antenna. 57. Ecacanthothrips tibialis. 58. Holothrips flavus. 59. Hoplandrothrips bidens. 60. Hoplandrothrips coloratus. 61. Hoplandrothrips flavipes. 62. Hoplandrothrips nobilis. 63. Hoplandrothrips obesametae. 64. Hoplandrothrips ochraceus. 65. Hoplothrips orientalis. 66 in Key to the fungus-feeder Phlaeothripinae species from China (Thysanoptera: Phlaeothripidae)

Figs 57–66. Antenna. 57. Ecacanthothrips tibialis. 58. Holothrips flavus. 59. Hoplandrothrips bidens. 60. Hoplandrothrips coloratus. 61. Hoplandrothrips flavipes. 62. Hoplandrothrips nobilis. 63. Hoplandrothrips obesametae. 64. Hoplandrothrips ochraceus. 65. Hoplothrips orientalis. 66. Hyidiothrips brunneus.

opencc-by-4.0Dec 2014View details →
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Supplementary material S1. Donacia (Protodonacia) bienkowskii Bukejs and Alekseev subgen. et sp. nov., holotype, Nr. 3300.142 [RSKM], X-ray micro-CT volume rendering of the habitus without legs and antennae.

<p>Supplementary material S1 in paper: Bukejs A., Alekseev V.I. &amp; McKellard R.C. First described reed beetle (Chrysomelidae: Donaciinae) from amber inclusion: member of the littoral community in the Eocene Baltic amber forest. Historical Biology.</p> <p>&nbsp;</p>

opencc-by-4.0Apr 2023View details →
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5G-EMIT Project: EMF measurements of 2G/3G/4G/5G frequency bands captured with a IMEC/University of Ghent sensor on the terrace of a building in LOS to one antenna in the Esch-Belval Area, Luxembourg (2023-02-21)

<p>During the 5G-EMIT project, EMF measurements of relevant mobile frequency bands have been taken at various sites around known antennas.</p> <p>Focus was in measuring the the following standard frequency bands:</p> <ul> <li>5G 700 <ul> <li>Band 28 FDD down</li> <li>758 - 803 MHz (Luxembourg: 758 - 788 MHz)</li> </ul> </li> <li>LTE 800 <ul> <li>Band 20 FDD down<br> 791 - 821 MHz</li> </ul> </li> <li>GSM 900 <ul> <li>Band 8 FDD down</li> <li>925 - 960 MHz</li> </ul> </li> <li>GSM/LTE 1800 <ul> <li>Band 3 FDD down</li> <li>1805 - 1880 MHz</li> </ul> </li> <li>UMTS 2100 <ul> <li>Band 1 FDD down</li> <li>2110 - 2170 MHz</li> </ul> </li> <li>LTE 2600 <ul> <li>Band 38 TDD</li> <li>2570 - 2620 MHz</li> </ul> </li> <li>LTE 2600 <ul> <li>Band 7 FDD down</li> <li>2620 - 2690 MHz</li> </ul> </li> <li>5G 3500 <ul> <li>Band 78 TDD</li> <li>3300 - 3800 MHz (Luxembourg: 3400 - 3800 MHz)</li> </ul> </li> </ul> <p><br> Two sensor have been used: The MVG EME Spy Evolution and a sensor developed by IMEC/University of Ghent.</p> <ul> <li>The MVG Spy Evolution sensor is able to measure all of&nbsp;the&nbsp;requested&nbsp;frequency bands&nbsp;as defined by the standard.</li> <li>The IMEC/University of Ghent sensor is only able to measure the LTE 800, GSM 900, GSM/LTE 1800 bands as defined by the standard.<br> In the 5G 3500 band it is only able to measure the range of 3550-3700 MHz (3465-3785 MHz within a -5db response).</li> </ul> <p>The datasets of the ZIP file has following structure:</p> <ul> <li>measurements:&nbsp; <ul> <li>the files of the measurements as provided by the sensor or application</li> <li>combined file of measurements in case the measurements have been split into several parts</li> <li>potentially analysis files of the measurements&nbsp;</li> </ul> </li> <li>pictures: <ul> <li>pictures of the antennas</li> <li>pictures of the sensor</li> <li>pictures of the location of the sensor</li> </ul> </li> <li>Readme.txt: <ul> <li>Used time-zone in the tables</li> <li>Used units in the tables</li> <li>Calculation of the total values in the tables</li> <li>Used labels of the the frequency bands</li> <li>Used sensor (MVG EME Spy Evolution or IMEC/University of Ghent)</li> <li>Locations of the target antennas</li> <li>Potentially location of the fixed sensor</li> </ul> </li> </ul>

opencc-by-sa-4.0Apr 2023View details →
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5G-EMIT Project: EMF measurements of 2G/3G/4G/5G frequency bands captured with a MVG EME Spy Evolution sensor while walking in LOS and NLOS to two antennas through the Esch-Belval Area, Luxembourg (2022-11-10)

<p>During the 5G-EMIT project, EMF measurements of relevant mobile frequency bands have been taken at various sites around known antennas.</p> <p>Focus was in measuring the the following standard frequency bands:</p> <ul> <li>5G 700 <ul> <li>Band 28 FDD down</li> <li>758 - 803 MHz (Luxembourg: 758 - 788 MHz)</li> </ul> </li> <li>LTE 800 <ul> <li>Band 20 FDD down<br> 791 - 821 MHz</li> </ul> </li> <li>GSM 900 <ul> <li>Band 8 FDD down</li> <li>925 - 960 MHz</li> </ul> </li> <li>GSM/LTE 1800 <ul> <li>Band 3 FDD down</li> <li>1805 - 1880 MHz</li> </ul> </li> <li>UMTS 2100 <ul> <li>Band 1 FDD down</li> <li>2110 - 2170 MHz</li> </ul> </li> <li>LTE 2600 <ul> <li>Band 38 TDD</li> <li>2570 - 2620 MHz</li> </ul> </li> <li>LTE 2600 <ul> <li>Band 7 FDD down</li> <li>2620 - 2690 MHz</li> </ul> </li> <li>5G 3500 <ul> <li>Band 78 TDD</li> <li>3300 - 3800 MHz (Luxembourg: 3400 - 3800 MHz)</li> </ul> </li> </ul> <p><br> Two sensor have been used: The MVG EME Spy Evolution and a sensor developed by IMEC/University of Ghent.</p> <ul> <li>The MVG Spy Evolution sensor is able to measure all of&nbsp;the&nbsp;requested&nbsp;frequency bands&nbsp;as defined by the standard.</li> <li>The IMEC/University of Ghent sensor is only able to measure the LTE 800, GSM 900, GSM/LTE 1800 bands as defined by the standard.<br> In the 5G 3500 band it is only able to measure the range of 3550-3700 MHz (3465-3785 MHz within a -5db response).</li> </ul> <p>The datasets of the ZIP file has following structure:</p> <ul> <li>measurements:&nbsp; <ul> <li>the files of the measurements as provided by the sensor or application</li> <li>combined file of measurements in case the measurements have been split into several parts</li> <li>potentially analysis files of the measurements&nbsp;</li> </ul> </li> <li>pictures: <ul> <li>pictures of the antennas</li> <li>pictures of the sensor</li> <li>pictures of the location of the sensor</li> </ul> </li> <li>Readme.txt: <ul> <li>Used time-zone in the tables</li> <li>Used units in the tables</li> <li>Calculation of the total values in the tables</li> <li>Used labels of the the frequency bands</li> <li>Used sensor (MVG EME Spy Evolution or IMEC/University of Ghent)</li> <li>Locations of the target antennas</li> <li>Potentially location of the fixed sensor</li> </ul> </li> </ul>

opencc-by-sa-4.0Apr 2023View details →
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5G-EMIT Project: EMF measurements of 2G/3G/4G/5G frequency bands captured with a MVG EME Spy Evolution sensor while walking in LOS and NLOS to two antennas through the Esch-Belval Area, Luxembourg (2023-02-15)

<p>During the 5G-EMIT project, EMF measurements of relevant mobile frequency bands have been taken at various sites around known antennas.</p> <p>Focus was in measuring the the following standard frequency bands:</p> <ul> <li>5G 700 <ul> <li>Band 28 FDD down</li> <li>758 - 803 MHz (Luxembourg: 758 - 788 MHz)</li> </ul> </li> <li>LTE 800 <ul> <li>Band 20 FDD down<br> 791 - 821 MHz</li> </ul> </li> <li>GSM 900 <ul> <li>Band 8 FDD down</li> <li>925 - 960 MHz</li> </ul> </li> <li>GSM/LTE 1800 <ul> <li>Band 3 FDD down</li> <li>1805 - 1880 MHz</li> </ul> </li> <li>UMTS 2100 <ul> <li>Band 1 FDD down</li> <li>2110 - 2170 MHz</li> </ul> </li> <li>LTE 2600 <ul> <li>Band 38 TDD</li> <li>2570 - 2620 MHz</li> </ul> </li> <li>LTE 2600 <ul> <li>Band 7 FDD down</li> <li>2620 - 2690 MHz</li> </ul> </li> <li>5G 3500 <ul> <li>Band 78 TDD</li> <li>3300 - 3800 MHz (Luxembourg: 3400 - 3800 MHz)</li> </ul> </li> </ul> <p><br> Two sensor have been used: The MVG EME Spy Evolution and a sensor developed by IMEC/University of Ghent.</p> <ul> <li>The MVG Spy Evolution sensor is able to measure all of&nbsp;the&nbsp;requested&nbsp;frequency bands&nbsp;as defined by the standard.</li> <li>The IMEC/University of Ghent sensor is only able to measure the LTE 800, GSM 900, GSM/LTE 1800 bands as defined by the standard.<br> In the 5G 3500 band it is only able to measure the range of 3550-3700 MHz (3465-3785 MHz within a -5db response).</li> </ul> <p>The datasets of the ZIP file has following structure:</p> <ul> <li>measurements:&nbsp; <ul> <li>the files of the measurements as provided by the sensor or application</li> <li>combined file of measurements in case the measurements have been split into several parts</li> <li>potentially analysis files of the measurements&nbsp;</li> </ul> </li> <li>pictures: <ul> <li>pictures of the antennas</li> <li>pictures of the sensor</li> <li>pictures of the location of the sensor</li> </ul> </li> <li>Readme.txt: <ul> <li>Used time-zone in the tables</li> <li>Used units in the tables</li> <li>Calculation of the total values in the tables</li> <li>Used labels of the the frequency bands</li> <li>Used sensor (MVG EME Spy Evolution or IMEC/University of Ghent)</li> <li>Locations of the target antennas</li> <li>Potentially location of the fixed sensor</li> </ul> </li> </ul>

opencc-by-sa-4.0Apr 2023View details →
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5G-EMIT Project: EMF measurements of 2G/3G/4G/5G frequency bands captured with a MVG EME Spy Evolution sensor while driving in LOS and NLOS to several antennas through Luxembourg-Hollerich and Luxembourg Center, Luxembourg (2022-08-25)

<p>During the 5G-EMIT project, EMF measurements of relevant mobile frequency bands have been taken at various sites around known antennas.</p> <p>Focus was in measuring the the following standard frequency bands:</p> <ul> <li>5G 700 <ul> <li>Band 28 FDD down</li> <li>758 - 803 MHz (Luxembourg: 758 - 788 MHz)</li> </ul> </li> <li>LTE 800 <ul> <li>Band 20 FDD down<br> 791 - 821 MHz</li> </ul> </li> <li>GSM 900 <ul> <li>Band 8 FDD down</li> <li>925 - 960 MHz</li> </ul> </li> <li>GSM/LTE 1800 <ul> <li>Band 3 FDD down</li> <li>1805 - 1880 MHz</li> </ul> </li> <li>UMTS 2100 <ul> <li>Band 1 FDD down</li> <li>2110 - 2170 MHz</li> </ul> </li> <li>LTE 2600 <ul> <li>Band 38 TDD</li> <li>2570 - 2620 MHz</li> </ul> </li> <li>LTE 2600 <ul> <li>Band 7 FDD down</li> <li>2620 - 2690 MHz</li> </ul> </li> <li>5G 3500 <ul> <li>Band 78 TDD</li> <li>3300 - 3800 MHz (Luxembourg: 3400 - 3800 MHz)</li> </ul> </li> </ul> <p><br> Two sensor have been used: The MVG EME Spy Evolution and a sensor developed by IMEC/University of Ghent.</p> <ul> <li>The MVG Spy Evolution sensor is able to measure all of the requested&nbsp;frequency bands as defined by the standard.</li> <li>The IMEC/University of Ghent sensor is only able to measure the LTE 800, GSM 900, GSM/LTE 1800 bands as defined by the standard.<br> In the 5G 3500 band it is only able to measure the range of 3550-3700 MHz (3465-3785 MHz within a -5db response).</li> </ul> <p>The datasets of the ZIP file has following structure:</p> <ul> <li>measurements:&nbsp; <ul> <li>the files of the measurements as provided by the sensor or application</li> <li>combined file of measurements in case the measurements have been split into several parts</li> <li>potentially analysis files of the measurements&nbsp;</li> </ul> </li> <li>pictures: <ul> <li>pictures of the antennas</li> <li>pictures of the sensor</li> <li>pictures of the location of the sensor</li> </ul> </li> <li>- Readme.txt: <ul> <li>Used time-zone in the tables</li> <li>Used units in the tables</li> <li>Calculation of the total values in the tables</li> <li>Used labels of the the frequency bands</li> <li>Used sensor (MVG EME Spy Evolution or IMEC/University of Ghent)</li> <li>Locations of the target antennas</li> <li>Potentially location of the fixed sensor</li> </ul> </li> </ul>

opencc-by-sa-4.0Apr 2023View details →
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5G-EMIT Project: EMF measurements of 2G/3G/4G/5G frequency bands captured with a MVG EME Spy Evolution sensor close to a window of a building in LOS to two antennas in the Esch-Belval Area, Luxembourg (2023-02-07)

<p>During the 5G-EMIT project, EMF measurements of relevant mobile frequency bands have been taken at various sites around known antennas.</p> <p>Focus was in measuring the the following standard frequency bands:</p> <ul> <li>5G 700 <ul> <li>Band 28 FDD down</li> <li>758 - 803 MHz (Luxembourg: 758 - 788 MHz)</li> </ul> </li> <li>LTE 800 <ul> <li>Band 20 FDD down<br> 791 - 821 MHz</li> </ul> </li> <li>GSM 900 <ul> <li>Band 8 FDD down</li> <li>925 - 960 MHz</li> </ul> </li> <li>GSM/LTE 1800 <ul> <li>Band 3 FDD down</li> <li>1805 - 1880 MHz</li> </ul> </li> <li>UMTS 2100 <ul> <li>Band 1 FDD down</li> <li>2110 - 2170 MHz</li> </ul> </li> <li>LTE 2600 <ul> <li>Band 38 TDD</li> <li>2570 - 2620 MHz</li> </ul> </li> <li>LTE 2600 <ul> <li>Band 7 FDD down</li> <li>2620 - 2690 MHz</li> </ul> </li> <li>5G 3500 <ul> <li>Band 78 TDD</li> <li>3300 - 3800 MHz (Luxembourg: 3400 - 3800 MHz)</li> </ul> </li> </ul> <p><br> Two sensor have been used: The MVG EME Spy Evolution and a sensor developed by IMEC/University of Ghent.</p> <ul> <li>The MVG Spy Evolution sensor is able to measure all of&nbsp;the&nbsp;requested&nbsp;frequency bands&nbsp;as defined by the standard.</li> <li>The IMEC/University of Ghent sensor is only able to measure the LTE 800, GSM 900, GSM/LTE 1800 bands as defined by the standard.<br> In the 5G 3500 band it is only able to measure the range of 3550-3700 MHz (3465-3785 MHz within a -5db response).</li> </ul> <p>The datasets of the ZIP file has following structure:</p> <ul> <li>measurements:&nbsp; <ul> <li>the files of the measurements as provided by the sensor or application</li> <li>combined file of measurements in case the measurements have been split into several parts</li> <li>potentially analysis files of the measurements&nbsp;</li> </ul> </li> <li>pictures: <ul> <li>pictures of the antennas</li> <li>pictures of the sensor</li> <li>pictures of the location of the sensor</li> </ul> </li> <li>Readme.txt: <ul> <li>Used time-zone in the tables</li> <li>Used units in the tables</li> <li>Calculation of the total values in the tables</li> <li>Used labels of the the frequency bands</li> <li>Used sensor (MVG EME Spy Evolution or IMEC/University of Ghent)</li> <li>Locations of the target antennas</li> <li>Potentially location of the fixed sensor</li> </ul> </li> </ul>

opencc-by-sa-4.0Apr 2023View details →
zenodo40/100

5G-EMIT Project: EMF measurements of 2G/3G/4G/5G frequency bands captured with a IMEC/University of Ghent sensor in a building behind the window in LOS to one antenna in the Esch-Belval Area, Luxembourg (2023-01-31)

<p>During the 5G-EMIT project, EMF measurements of relevant mobile frequency bands have been taken at various sites around known antennas.</p> <p>Focus was in measuring the the following standard frequency bands:</p> <ul> <li>5G 700 <ul> <li>Band 28 FDD down</li> <li>758 - 803 MHz (Luxembourg: 758 - 788 MHz)</li> </ul> </li> <li>LTE 800 <ul> <li>Band 20 FDD down<br> 791 - 821 MHz</li> </ul> </li> <li>GSM 900 <ul> <li>Band 8 FDD down</li> <li>925 - 960 MHz</li> </ul> </li> <li>GSM/LTE 1800 <ul> <li>Band 3 FDD down</li> <li>1805 - 1880 MHz</li> </ul> </li> <li>UMTS 2100 <ul> <li>Band 1 FDD down</li> <li>2110 - 2170 MHz</li> </ul> </li> <li>LTE 2600 <ul> <li>Band 38 TDD</li> <li>2570 - 2620 MHz</li> </ul> </li> <li>LTE 2600 <ul> <li>Band 7 FDD down</li> <li>2620 - 2690 MHz</li> </ul> </li> <li>5G 3500 <ul> <li>Band 78 TDD</li> <li>3300 - 3800 MHz (Luxembourg: 3400 - 3800 MHz)</li> </ul> </li> </ul> <p><br> Two sensor have been used: The MVG EME Spy Evolution and a sensor developed by IMEC/University of Ghent.</p> <ul> <li>The MVG Spy Evolution sensor is able to measure all of&nbsp;the&nbsp;requested&nbsp;frequency bands&nbsp;as defined by the standard.</li> <li>The IMEC/University of Ghent sensor is only able to measure the LTE 800, GSM 900, GSM/LTE 1800 bands as defined by the standard.<br> In the 5G 3500 band it is only able to measure the range of 3550-3700 MHz (3465-3785 MHz within a -5db response).</li> </ul> <p>The datasets of the ZIP file has following structure:</p> <ul> <li>measurements:&nbsp; <ul> <li>the files of the measurements as provided by the sensor or application</li> <li>combined file of measurements in case the measurements have been split into several parts</li> <li>potentially analysis files of the measurements&nbsp;</li> </ul> </li> <li>pictures: <ul> <li>pictures of the antennas</li> <li>pictures of the sensor</li> <li>pictures of the location of the sensor</li> </ul> </li> <li>Readme.txt: <ul> <li>Used time-zone in the tables</li> <li>Used units in the tables</li> <li>Calculation of the total values in the tables</li> <li>Used labels of the the frequency bands</li> <li>Used sensor (MVG EME Spy Evolution or IMEC/University of Ghent)</li> <li>Locations of the target antennas</li> <li>Potentially location of the fixed sensor</li> </ul> </li> </ul>

opencc-by-sa-4.0Apr 2023View details →

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